Hemimegalencephaly

Somatic mosaic MONDO:0020492 Pathograph 16 Show in embeddings browser Epilepsy Neurological Disease

Hemimegalencephaly is overgrowth of one cerebral hemisphere, present at birth, with a disorganized cortex that is intrinsically epileptogenic. Babies present in the first months of life with seizures that do not respond to medication, and they accrue hemiparesis, visual field loss, and developmental impairment. It is a mosaic disease: a variant arises in a single progenitor cell during brain development, in the signalling cascade that tells cells how large to grow and when to divide, and every descendant of that cell inherits it while the rest of the body does not. Because the variant is confined to brain, blood testing is normal and the diagnosis was molecularly invisible until surgical tissue could be sequenced. The definitive treatment is disconnection or removal of the affected hemisphere, which is as drastic as it sounds and works remarkably well.

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Mappings
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Inheritance
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Pathophys.
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Phenotypes
3
Gaps
16
Pathograph
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Genes
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Medical Actions
2
Differentials
3
References
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Deep Research
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Classifications

Harrison's Part
NEUROLOGIC
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Mappings

MONDO
MONDO:0020492 hemimegalencephaly
skos:exactMatch MONDO
MONDO:0020492 is the hemimegalencephaly concept, the unihemispheric cortical overgrowth malformation this entry models.
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Inheritance

1
Somatic mosaic, arising de novo after fertilization HP:0003745
Not inherited and not heritable. The variant arises in a single neural progenitor during cortical development, so it is confined to that cell's descendants within the brain. Parents are unaffected, recurrence risk for siblings is essentially that of the general population, and the affected individual cannot transmit it, since the germline does not carry it. The counselling message is unusually reassuring for a severe malformation, and it depends on the diagnosis being understood as mosaic rather than genetic in the familial sense.
Sporadic
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"Exome sequencing and mass spectrometry analysis in paired brain-blood samples from individuals with HME (n = 20 cases) identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes."
Establishes the de novo somatic origin using the paired brain and blood design that is the only way to demonstrate it.
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Discussions and Knowledge Gaps

3
A causal variant is found in only about a third of hemimegalencephaly brains. Where are the other two thirds, and is the shortfall a detection problem or a biology problem?
KNOWLEDGE GAP OPEN hme_missing_causal_variants
The founding study sequenced paired brain and blood and found a pathway variant in 30 percent of cases. That was a triumph at the time and it is still a majority unexplained. Two very different explanations are available and they have different consequences. The detection account notes that the variants that were found sat at allele fractions as low as eight percent, and that a resected fragment samples only part of a hemisphere; a clone that arose slightly later, or one whose densest region was not the piece sent for sequencing, would be invisible to bulk exome sequencing at standard depth. On this view the missing variants are in the same genes, and deeper or single-cell sequencing of multiple regions should find them. The biology account holds that some hemimegalencephaly is caused by something other than a point variant in these three genes: a variant in a different pathway member, a structural or copy-number event, or a non-genetic developmental insult producing the same endpoint. The two are distinguishable and the answer matters directly for the therapy question curated separately in this entry, because a pathway-directed drug can only help patients whose disease actually runs through that pathway.
Proposed experiments
Deep multi-region and single-cell sequencing of variant-negative brains
exp_hme_deep_multiregion_sequencing
Take hemispherectomy specimens from patients in whom standard exome sequencing found nothing, sample multiple anatomically defined regions including the most dysplastic tissue, and apply high-depth targeted sequencing of known pathway genes plus single-nucleus genome sequencing, with S6 phosphorylation immunostaining on adjacent sections as an orthogonal readout of whether the pathway is active.
Decision criterion
Recovering pathway variants at low allele fraction in a substantial share of previously negative cases would identify the shortfall as a detection problem and would extend candidacy for pathway-directed therapy. Finding no variant in tissue that nonetheless shows strong S6 phosphorylation would point to a different route into the same pathway state; finding neither would suggest a genuinely different mechanism.
Show evidence (2 references)
PMID:22729223 SUPPORT Human Clinical
"Exome sequencing and mass spectrometry analysis in paired brain-blood samples from individuals with HME (n = 20 cases) identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes."
Establishes the 30 percent yield that defines the size of this gap.
PMID:22729223 SUPPORT Human Clinical
"Identified mutations were present in 8-40% of sequenced alleles in various brain regions"
The low allele fractions that make the detection account plausible, and the between-region variation that makes sampling a real concern.
When seizures recur after an entire hemisphere has been disconnected, is the cause incomplete disconnection, or is the supposedly normal hemisphere independently abnormal, and does mosaicism predict which?
CONTROVERSY UNDER DISCUSSION hme_why_does_hemispherectomy_fail
Roughly one operated child in five is not seizure-free, and the puzzle is sharp: if the seizure generator was the malformed hemisphere and that hemisphere is gone or disconnected, seizures should stop. The strongest clue is that bilateral ictal abnormality before surgery predicts faster recurrence by a hazard ratio above eleven, while the choice between anatomic and functional hemispherectomy predicts very little. That pattern favours the second reading, that the contralateral hemisphere is not truly normal. It sits comfortably with the mosaic model, since a variant-bearing clone that arose before the hemispheres separated could seed both sides, with the minority side too sparsely affected to look abnormal on imaging. The competing reading, incomplete disconnection, is not dead: functional hemispherectomy leaves tissue in place and depends on the completeness of the disconnection, and residual connections are a documented cause of failure in hemispheric surgery generally. What would separate them is a molecular question rather than a surgical one, and it has not been asked: nobody has systematically looked for the variant in the contralateral hemisphere. If the contralateral side carries it, bilateral electroencephalographic abnormality becomes a marker of clone distribution rather than a mysterious risk factor, and preoperative counselling gains a mechanism.
Proposed experiments
Variant detection in the contralateral hemisphere
exp_hme_contralateral_variant_detection
In patients undergoing hemispherectomy, seek the causal variant in contralateral tissue by the least invasive available route, including cerebrospinal fluid cell-free DNA and any contralateral tissue obtained for other reasons, and relate detection to preoperative bilateral electroencephalographic abnormality and to postoperative seizure outcome.
Decision criterion
Detection of the variant contralaterally in patients with bilateral electroencephalographic abnormality and postoperative recurrence would establish the clone-distribution account and make cerebrospinal fluid testing a preoperative prognostic tool. Absence of contralateral variant in recurrent cases would shift the explanation back to incomplete disconnection and toward surgical technique. One design caution: the sensitivity of cerebrospinal fluid cell-free DNA for detecting these variants is currently poor, so a negative result would need to be interpreted against a measured detection floor rather than taken at face value, and the study is only informative if it establishes that floor first.
Show evidence (3 references)
PMID:37975663 SUPPORT Human Clinical
"presence of bilateral ictal electroencephalography abnormalities (hazard ratio = 11.5; P = .002) was significantly associated with faster time-to-seizure recurrence"
The central observation of this controversy, and the reason the contralateral hemisphere is the leading suspect.
PMID:37975663 SUPPORT Human Clinical
"Cohorts were similar in preoperative characteristics and at the last follow-up; 77% (n = 66) of the FH cohort and 81%"
Shows that the two surgical approaches perform comparably, which weakens the incomplete-disconnection account relative to the contralateral one, since the approach that leaves tissue behind does not do noticeably worse.
PMID:22729223 SUPPORT Human Clinical
"Identified mutations were present in 8-40% of sequenced alleles in various brain regions"
Supports the plausibility of a clone distributed unevenly across regions. Marked PARTIAL because the regions sampled were within the affected hemisphere, so this does not itself demonstrate contralateral spread.
mTOR inhibition is approved for refractory seizures in tuberous sclerosis, which reaches the same pathway state by a different route. Can it control seizures in hemimegalencephaly, and if so does it delay or replace hemispherectomy, or merely postpone a surgery that should have happened sooner?
KNOWLEDGE GAP OPEN hme_can_mtor_inhibition_replace_surgery
The rationale is unusually clean for a precision therapy: the causal lesion activates a pathway, a licensed drug inhibits that pathway, and the drug already works for seizures in the disease at the other end of the same spectrum. Yet clinical study in hemimegalencephaly is described as only just emerging, and there are specific reasons it may not transfer. Tuberous sclerosis involves germline repressor loss in every cell, whereas here the lesion is a mosaic activating variant in a minority of cells, and it is not obvious that systemic inhibition reaches an adequate concentration in the right cells. More fundamentally, much of the pathology here is structural and already built: a hemisphere that developed with the wrong cytoarchitecture does not become normally laminated when the pathway is switched off in infancy. Inhibition might therefore reduce seizure burden without altering the epileptogenic substrate. That distinction is the crux, because the real risk is not that the drug fails but that partial benefit defers a hemispherectomy past the developmental window in which the remaining hemisphere can still take over language and motor function. A therapy that buys two years of milder seizures at the cost of a worse functional outcome after later surgery would be a poor trade, and nothing currently distinguishes that scenario from the good one.
Proposed experiments
mTOR inhibitor trial with surgical timing and developmental co-endpoints
exp_hme_mtor_inhibitor_trial_with_surgical_timing_endpoint
A trial of mTOR inhibition in infants with hemimegalencephaly that takes seizure frequency as its primary outcome but co-registers age at eventual hemispherectomy and post-surgical developmental and language outcome, so that any deferral of surgery is measured rather than assumed to be a benefit.
Decision criterion
Seizure reduction without later surgery and with preserved developmental outcome would establish a genuine alternative. Seizure reduction accompanied by later surgery and worse post-surgical developmental outcome would show the drug is deferring rather than replacing the definitive treatment, and would argue for using it only as a bridge.
Show evidence (3 references)
PMID:34608615 SUPPORT Other
"Based on extensive pre-clinical and clinical data, the mTOR inhibitor everolimus is currently approved for the treatment of focal refractory seizures in patients with TSC."
Establishes the proof of principle in the repressor-loss member of the spectrum, which is what makes this a live question rather than speculation.
PMID:34608615 SUPPORT Other
"Although clinical studies are just emerging for FCD and HME, we believe the next decade will bring significant advancements in precision therapies for epilepsy related to these and other MCDs."
States the absence of clinical evidence in this disease specifically, which is the gap.
PMID:37975663 SUPPORT Human Clinical
"Definitive treatment for HME-related DRE is hemispheric surgery through either anatomic (AH) or functional hemispherectomy (FH)."
Establishes the standard against which any drug must be judged. Marked PARTIAL because it speaks to current practice rather than to whether pathway inhibition could change it.

Pathophysiology

9
Postzygotic Somatic Variant in the PI3K-AKT3-mTOR Pathway
A gain-of-function variant arises after fertilization in one neural progenitor, in PIK3CA, AKT3, or MTOR itself. The same recurrent PIK3CA change turns up independently in unrelated patients, which is the signature of a specific activating hotspot rather than of random damage. The variant is detectable in resected brain and absent from blood, so it could only be found once hemispherectomy tissue was available for sequencing.
PIK3CA hgnc:8975 HUGO Gene Nomenclature Committee (hgnc) Relation: this pathophysiological event involves this gene This pathophysiological event involves PIK3CA (hgnc:8975). hgnc:8975 is a gene from the HUGO Gene Nomenclature Committee. AKT3 hgnc:393 HUGO Gene Nomenclature Committee (hgnc) Relation: this pathophysiological event involves this gene This pathophysiological event involves AKT3 (hgnc:393). hgnc:393 is a gene from the HUGO Gene Nomenclature Committee. MTOR hgnc:3942 HUGO Gene Nomenclature Committee (hgnc) Relation: this pathophysiological event involves this gene This pathophysiological event involves MTOR (hgnc:3942). hgnc:3942 is a gene from the HUGO Gene Nomenclature Committee.
Show evidence (2 references)
PMID:22729223 SUPPORT Human Clinical
"A recurrent PIK3CA c.1633G>A mutation was found in four separate cases."
Recurrence of the identical change across unrelated patients is what distinguishes an activating hotspot from incidental somatic noise.
PMID:22729223 SUPPORT Human Clinical
"The intractable epilepsy that is associated with HME can be relieved by the surgical treatment hemispherectomy, allowing sampling of diseased tissue."
Explains why this molecular etiology was inaccessible until surgery provided brain tissue, which is the reason the disease was described as a mystery for decades.
Mosaic Variant Gradient Within the Affected Hemisphere
Only a minority of cells in the malformed hemisphere carry the variant, at allele fractions reported between roughly eight and forty percent across sampled regions. That gradient is mechanistically important rather than a sampling artefact: the size of the affected clone, and how early in development it arose, set how much cortex is malformed and how sharply the abnormality stops at the midline. It also sets a hard floor on detection, since a low-fraction variant in a small resected fragment can be missed.
neuron migration GO:0001764 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves abnormal neuron migration (GO:0001764). GO:0001764 is a biological process from the Gene Ontology. ⚠ ABNORMAL
Show evidence (2 references)
PMID:22729223 SUPPORT Human Clinical
"Identified mutations were present in 8-40% of sequenced alleles in various brain regions"
Quantifies the mosaic fraction and its variation between regions, which is what this node encodes.
PMID:22729223 SUPPORT Human Clinical
"Thus HME is probably a genetically mosaic disease caused by gain of function in phosphatidylinositol 3-kinase (PI3K)-AKT3-mTOR signaling."
States the mosaic disease model that this node and its upstream neighbour together represent.
Loss of Function in an mTOR Pathway Repressor
The second route into the same pathway state, and one this entry originally filed under a different disease. Loss-of-function variants in the negative regulators of the pathway are confirmed in hemimegalencephaly itself, not only in tuberous sclerosis: DEPDC5, NPRL2, NPRL3, PTEN, TSC1, and TSC2 have all been implicated. In some of these the mechanism is a two-hit combination, a germline variant in one allele plus a somatic mosaic second hit in brain, which is a different genetic architecture from the single somatic activating variant but converges on the same output. That two-hit shape also means the germline half is detectable in blood, which is the one circumstance in which a blood test is informative in this disease.
DEPDC5 hgnc:18423 HUGO Gene Nomenclature Committee (hgnc) Relation: this pathophysiological event involves this gene This pathophysiological event involves DEPDC5 (hgnc:18423). hgnc:18423 is a gene from the HUGO Gene Nomenclature Committee.
TOR signaling GO:0031929 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves increased TOR signaling (GO:0031929). GO:0031929 is a biological process from the Gene Ontology. ↑ INCREASED
Show evidence (1 reference)
PMID:34608615 SUPPORT Other
"Studies have also confirmed loss-of-function variants in negative regulators of the mTOR pathway in FCD and HME, including in DEPDC5, NPRL2, NPRL3, PTEN, TSC1, and TSC2"
States that repressor loss of function causes hemimegalencephaly itself, which is what licenses this node rather than leaving the repressor arm filed under a differential diagnosis.
Constitutive mTOR Pathway Activation
The variants converge on one output: the mTOR cascade is switched on when it should not be. This can be shown directly in patient brain as increased phosphorylation of the ribosomal protein S6, the standard downstream readout of mTOR activity, in the neurons of affected individuals. The same convergence is what places hemimegalencephaly in a spectrum with tuberous sclerosis and focal cortical dysplasia type II, which reach the same endpoint from the opposite direction by losing pathway repressors.
TOR signaling GO:0031929 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves increased TOR signaling (GO:0031929). GO:0031929 is a biological process from the Gene Ontology. ↑ INCREASED
Show evidence (2 references)
PMID:22729223 SUPPORT Human Clinical
"were associated with increased neuronal S6 protein phosphorylation in the brains of affected individuals, indicating aberrant activation of mammalian target of rapamycin (mTOR) signaling"
Direct demonstration in patient brain that the variants actually activate the pathway, rather than merely being predicted to.
PMID:37149062 SUPPORT Other
"The spectrum of cortical dysplasia results from somatic brain mutations in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2, NPRL3, TSC1 and TSC2."
Establishes the convergence that makes this node the hub of the entry: activator gain and repressor loss produce the same pathway state and a related family of malformations.
Dysregulated Progenitor Growth and Proliferation
mTOR is the cell's decision-maker about growth, and switching it on constitutively during corticogenesis produces cells that are too big and too numerous, and that migrate and laminate badly. The cellular signature in tissue is the cytomegalic neuron, an enormously enlarged cell, sometimes with balloon cells alongside. The consequences are structural rather than purely metabolic, which is why the resulting cortex is permanently abnormal rather than transiently dysfunctional.
neuron CL:0000540 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves neuron (CL:0000540). CL:0000540 is a cell type from the Cell Ontology.
cell growth GO:0016049 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves increased cell growth (GO:0016049). GO:0016049 is a biological process from the Gene Ontology. ↑ INCREASED
Show evidence (2 references)
PMID:26060899 SUPPORT Other
"based on the severity of cytoarchitectural disruption--tangential or radial dispersion, or loss of laminar structure--and the presence of unique cells types such as cytomegalic neurons or balloon cells"
Describes the cytoarchitectural and cellular consequences this node asserts, in the malformation family hemimegalencephaly belongs to.
PMID:37149062 SUPPORT Other
"The mechanistic target of rapamycin (mTOR) signaling pathway is an essential regulator of numerous cellular activities such as metabolism, growth, proliferation, and survival."
States the normal function whose dysregulation produces the growth phenotype, which is why an mTOR variant yields overgrowth specifically.
Unihemispheric Overgrowth and Cortical Dyslamination
The affected hemisphere is enlarged and structurally wrong, with a thickened and poorly laminated cortex, blurred grey-white boundary, and abnormal gyration. The abnormality respects the midline almost completely, which is the imaging signature and the anatomical fact that makes hemispheric surgery conceivable. The unaffected hemisphere is not entirely normal in function, which becomes important when surgery is considered.
cerebral hemisphere UBERON:0001869 Uberon multi-species anatomy ontology (UBERON) Relation: this pathophysiological event occurs in this anatomical location This pathophysiological event occurs in cerebral hemisphere (UBERON:0001869). UBERON:0001869 is an anatomical location from the Uberon multi-species anatomy ontology.
Show evidence (2 references)
PMID:37975663 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay."
States the unihemispheric hypertrophy that defines this node and the three clinical consequences that follow from it.
PMID:22729223 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is characterized by overgrowth of either one of the two cerebral hemispheres."
Establishes the defining anatomical abnormality and that either side may be affected.
Intrinsically Epileptogenic Dysplastic Cortex
Dysplastic cortex does not merely sit there; it generates seizures. Loss of laminar organization disrupts the normal segregation of excitatory and inhibitory connectivity, and cytomegalic neurons have abnormal intrinsic excitability, so the malformed tissue is an epileptogenic generator in its own right. That is why the epilepsy is intractable to medication from the outset and why removing or disconnecting the tissue, rather than suppressing it pharmacologically, is what works.
neuron CL:0000540 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves neuron (CL:0000540). CL:0000540 is a cell type from the Cell Ontology.
Show evidence (2 references)
PMID:26060899 SUPPORT Other
"Focal cortical dysplasias are common malformations of cerebral cortical development and are highly associated with medically intractable epilepsy."
Establishes the intrinsic epileptogenicity of dysplastic cortex in the malformation family this disease belongs to.
PMID:26060899 SUPPORT Other
"Most focal cortical dysplasias can be identified on neuroimaging and many require resective epilepsy surgery to cure refractory seizures."
Supports the claim that the tissue itself is the generator, since removing it is what cures the seizures.
Drug-Resistant Epilepsy of Infantile Onset
Seizures typically begin in the first months of life, often as infantile spasms or focal seizures, and are refractory to antiseizure medication. Drug resistance is close to definitional and it is the reason surgery is considered so early, in babies, when the developing brain still has the plasticity to reorganize function after losing a hemisphere.
Show evidence (2 references)
PMID:37975663 SUPPORT Human Clinical
"Definitive treatment for HME-related DRE is hemispheric surgery through either anatomic (AH) or functional hemispherectomy (FH)."
States that the drug-resistant epilepsy of this disease is treated surgically rather than medically, which is the practical content of drug resistance here.
PMID:37149062 SUPPORT Other
"which manifest with drug-resistant epilepsies"
Confirms drug resistance as the characteristic epilepsy phenotype of the malformation spectrum including hemimegalencephaly.
Hemiparesis and Developmental Impairment
The clinical endpoint: weakness on the side opposite the malformed hemisphere, visual field loss, and global developmental impairment. Two processes contribute and are hard to separate, which matters for prognosis. Part of the deficit is structural and present from birth, the direct cost of having one hemisphere built wrong. Part is acquired, the cost of years of uncontrolled seizures in a developing brain, and it is the part surgery is meant to prevent.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay."
Names the hemiparesis and developmental delay that constitute this endpoint.

Pathograph

Use the checkboxes to hide or show graph categories. Hover nodes for evidence and cross-linked metadata.
Pathograph: causal mechanism network for Hemimegalencephaly Interactive directed graph showing how pathophysiology mechanisms, phenotypes, genetic factors and variants, experimental models, environmental triggers, and treatments relate through causal and linked edges.

Phenotypes

6
Head and Neck 1
Macrocephaly HP:0000256 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Macrocephaly (HP:0000256). HP:0000256 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is characterized by overgrowth of either one of the two cerebral hemispheres."
Supports the hemispheric overgrowth from which the head enlargement follows. Marked PARTIAL because the source describes the brain rather than measuring head circumference.
Nervous System 4
Hemimegalencephaly HP:0007206 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Hemimegalencephaly (HP:0007206). HP:0007206 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is characterized by overgrowth of either one of the two cerebral hemispheres."
States the defining anatomical abnormality.
Drug-resistant epilepsy Seizure HP:0001250 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Seizure (HP:0001250). HP:0001250 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay."
Names drug-resistant epilepsy as a defining feature of the disease.
Hemiparesis HP:0001269 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Hemiparesis (HP:0001269). HP:0001269 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay."
Names hemiparesis as a defining feature.
Global developmental delay HP:0001263 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Global developmental delay (HP:0001263). HP:0001263 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay."
Names developmental delay as a defining feature.
Other 1
Hemianopia HP:0012377 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Hemianopia (HP:0012377). HP:0012377 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:34608615 SUPPORT Other
"for patients with HME, contralateral hemiparesis and hemianopia are commonly reported"
States the hemianopia and its contralateral laterality specifically for this disease. No frequency band is asserted because commonly reported is not a quantified figure.
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Genetic Associations

5
PIK3CA (Somatic gain-of-function variants in PIK3CA, present in brain and absent from blood, are among the commonest identified causes. A recurrent c.1633G>A change was found independently in four patients, which is the pattern expected of an activating hotspot.)
Gene: PIK3CA hgnc:8975 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is PIK3CA (hgnc:8975). hgnc:8975 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"A recurrent PIK3CA c.1633G>A mutation was found in four separate cases."
Documents the recurrent activating variant in unrelated patients.
AKT3 (Somatic activating variants in AKT3, the brain-enriched AKT isoform, are one of the three genes identified in the original brain-blood paired sequencing study and remain a recognized cause.)
Gene: AKT3 hgnc:393 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is AKT3 (hgnc:393). hgnc:393 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes"
Names AKT3 among the causative genes and quantifies the overall diagnostic yield.
MTOR (Somatic activating variants in MTOR itself cause the disease, which is the cleanest demonstration that the pathway rather than any particular upstream component is what matters.)
Gene: MTOR hgnc:3942 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is MTOR (hgnc:3942). hgnc:3942 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE
Show evidence (1 reference)
PMID:37149062 SUPPORT Other
"The spectrum of cortical dysplasia results from somatic brain mutations in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2, NPRL3, TSC1 and TSC2."
Names MTOR among the somatic activators causing this malformation spectrum.
RHEB and AKT1 (Two further pathway activators confirmed in this disease beyond the three found in the founding study. RHEB is the small GTPase that activates mTOR complex 1 directly, so an activating variant in it is about as proximal to the pathway output as a variant can be.)
Gene: RHEB hgnc:10011 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is RHEB (hgnc:10011). hgnc:10011 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE
Show evidence (1 reference)
PMID:34608615 SUPPORT Other
"activating variants in positive regulators of the mTOR pathway in FCD and HME, including variants in AKT1, AKT3, MTOR, PIK3CA, and RHEB"
Names RHEB and AKT1 alongside the three genes already curated, and does so for hemimegalencephaly specifically rather than for the spectrum in general.
mTOR pathway repressors (Loss-of-function variants in the negative regulators DEPDC5, NPRL2, NPRL3, PTEN, TSC1, and TSC2 are confirmed causes of hemimegalencephaly, sometimes through a two-hit combination of a germline variant and a somatic mosaic second hit in brain. DEPDC5 is named as the representative because it is a GATOR1 component and therefore repressor loss in the amino-acid-sensing arm rather than in the growth-factor arm, which may not behave identically.)
Gene: DEPDC5 hgnc:18423 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is DEPDC5 (hgnc:18423). hgnc:18423 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE
Show evidence (1 reference)
PMID:34608615 SUPPORT Other
"Studies have also confirmed loss-of-function variants in negative regulators of the mTOR pathway in FCD and HME, including in DEPDC5, NPRL2, NPRL3, PTEN, TSC1, and TSC2"
Enumerates the repressor genes confirmed in this disease, which is what this record curates.
💊

Medical Actions

3
Hemispherectomy
Action: hemispherectomyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is hemispherectomy, annotated with Surgical Procedure (NCIT:C15329). NCIT:C15329 is a clinical intervention from the NCI Thesaurus. Ontology label: Surgical Procedure NCIT:C15329
Removing or disconnecting the affected hemisphere is the definitive treatment, and it is offered in infancy because that is when the remaining hemisphere can still take over language and motor function. The anatomic and functional variants achieve comparable seizure outcomes, so the choice turns on operative morbidity rather than efficacy. The trade is explicit and permanent: a fixed hemiparesis and hemianopia in exchange for stopping seizures that would otherwise continue to damage the developing brain.
Mechanism Target:
INHIBITS Intrinsically Epileptogenic Dysplastic Cortex
Show evidence (2 references)
PMID:37975663 SUPPORT Human Clinical
"Definitive treatment for HME-related DRE is hemispheric surgery through either anatomic (AH) or functional hemispherectomy (FH)."
States that hemispheric surgery is the definitive treatment.
PMID:37975663 SUPPORT Human Clinical
"Cohorts were similar in preoperative characteristics and at the last follow-up; 77% (n = 66) of the FH cohort and 81%"
Documents the comparable seizure outcomes between the two surgical approaches, which is why the choice is made on morbidity rather than efficacy.
Antiseizure medication
Action: PharmacotherapyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Pharmacotherapy (NCIT:C15986). NCIT:C15986 is a clinical intervention from the NCI Thesaurus. NCIT:C15986
Medication is started first but rarely controls the seizures, and its role is to hold the line while surgical assessment proceeds rather than to be the definitive answer.
Mechanism Target:
INHIBITS Drug-Resistant Epilepsy of Infantile Onset
Show evidence (1 reference)
PMID:34608615 SUPPORT Other
"Initial treatment with antiseizure medications is empiric, and consideration of surgery is the standard of care for eligible patients with medically refractory epilepsy."
States both the empiric first-line role of medication and the escalation to surgery that defines its limits in this disease.
mTOR inhibition
Action: PharmacotherapyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Pharmacotherapy (NCIT:C15986). NCIT:C15986 is a clinical intervention from the NCI Thesaurus. NCIT:C15986
Agent: everolimus CHEBI:68478 Chemical Entities of Biological Interest (CHEBI) Relation: this treatment uses this therapeutic agent This treatment uses everolimus (CHEBI:68478). CHEBI:68478 is a therapeutic agent from Chemical Entities of Biological Interest.
Directly inhibiting the overactive pathway is the obvious precision therapy, and it is already approved for refractory seizures in tuberous sclerosis, which reaches the same pathway state by losing a repressor. Whether it works in hemimegalencephaly is not yet established: clinical study here is described as just emerging. It is curated as a rational but unproven option rather than as practice, and the gap is recorded in the discussions block.
Mechanism Target:
INHIBITS Constitutive mTOR Pathway Activation
Show evidence (2 references)
PMID:34608615 SUPPORT Other
"Based on extensive pre-clinical and clinical data, the mTOR inhibitor everolimus is currently approved for the treatment of focal refractory seizures in patients with TSC."
Establishes that pathway inhibition works for seizures in the repressor-loss member of this spectrum, which is the entire rationale for trying it here.
PMID:34608615 SUPPORT Other
"Although clinical studies are just emerging for FCD and HME, we believe the next decade will bring significant advancements in precision therapies for epilepsy related to these and other MCDs."
States plainly that the evidence in this disease does not yet exist, which is why this record is PARTIAL and framed as rational rather than established.
🔬

Diagnosis

3
Brain MRI
Imaging makes the diagnosis. The enlarged hemisphere with thickened, poorly laminated cortex and blurred grey-white boundary is recognizable, and the abnormality stopping at the midline is what distinguishes it from a bilateral malformation.
Magnetic Resonance Imaging NCIT:C16809 NCI Thesaurus (NCIT)
Results: Unihemispheric enlargement with cortical thickening, abnormal gyration, and loss of the normal grey-white junction, respecting the midline.
Show evidence (1 reference)
PMID:26060899 SUPPORT Other
"Most focal cortical dysplasias can be identified on neuroimaging and many require resective epilepsy surgery to cure refractory seizures."
Establishes imaging identification for this malformation family, which is the basis of the diagnostic approach here.
Somatic variant testing on resected brain tissue
Molecular diagnosis requires brain, not blood. Sequencing resected tissue finds a pathway variant in roughly a third of patients; a normal blood test excludes nothing, and even brain sequencing can miss a low-fraction variant in a small sample. This is the practical reason a molecular diagnosis is usually made after surgery rather than before it.
Genetic Testing NCIT:C15709 NCI Thesaurus (NCIT)
Results: A somatic activating variant in PIK3CA, AKT3, or MTOR in brain tissue at an allele fraction well below the germline expectation, absent from blood.
Show evidence (1 reference)
PMID:22729223 SUPPORT Human Clinical
"Exome sequencing and mass spectrometry analysis in paired brain-blood samples from individuals with HME (n = 20 cases) identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes."
Documents both the paired brain-blood method and the diagnostic yield reported in the results field.
Electroencephalography including assessment of the contralateral hemisphere
Beyond confirming the epilepsy, the electroencephalogram carries specific surgical prognostic weight: bilateral ictal abnormality predicts faster seizure recurrence after hemispherectomy by a large margin, which is information a family needs before consenting to the operation.
Electroencephalography NCIT:C38054 NCI Thesaurus (NCIT)
Results: Epileptiform abnormality over the malformed hemisphere, with the presence or absence of independent contralateral ictal activity as the prognostically decisive finding.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"presence of bilateral ictal electroencephalography abnormalities (hazard ratio = 11.5; P = .002) was significantly associated with faster time-to-seizure recurrence"
Quantifies the prognostic value that makes this test decision-relevant rather than merely confirmatory.
📈

Progression

2
Neonatal presentation with intractable seizures
Age: First months of life
The malformation is present at birth and seizures usually begin within the first months, frequently as infantile spasms. Antiseizure medication rarely controls them, and the question becomes surgical early rather than after years of trials.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Definitive treatment for HME-related DRE is hemispheric surgery through either anatomic (AH) or functional hemispherectomy (FH)."
Establishes that surgery rather than medication is the definitive treatment, which is what drives the early surgical timeline.
Post-surgical seizure freedom in most, recurrence in a minority
Age: Months to years after surgery
Roughly four in five operated children reach seizure freedom, and the two surgical approaches perform comparably. The strongest predictor of recurrence is not which operation was done but whether the electroencephalogram showed bilateral ictal abnormality beforehand, which points to the supposedly normal hemisphere being involved.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"presence of bilateral ictal electroencephalography abnormalities (hazard ratio = 11.5; P = .002) was significantly associated with faster time-to-seizure recurrence"
Quantifies the predictor of recurrence described in this phase and motivates the surgical discussion in this entry.
📊

Prevalence

1
Children undergoing epilepsy surgery
Unknown Ultra Rare
No population-based prevalence estimate exists. The disease is described as rare in the surgical literature, and the largest available synthesis pooled 145 operated patients from 26 studies, which indicates the order of magnitude of the published experience rather than a rate.
Show evidence (1 reference)
PMID:37975663 SUPPORT Human Clinical
"Data from 145 patients were extracted from 26 studies"
Indicates the scale of the pooled published surgical experience. Marked PARTIAL because a case count in operated patients is not a population rate.
🔀

Differential Diagnoses

2

Conditions with similar clinical presentations that must be differentiated from Hemimegalencephaly:

Overlapping Features The same disease mechanism at a smaller scale: a somatic mTOR-pathway variant in a smaller or later clone, producing a focal rather than hemispheric malformation. The distinction is one of extent, which is precisely why it is a differential and not an unrelated condition.
Distinguishing Features
  • Focal lesion amenable to targeted resection rather than hemispheric surgery.
  • No hemispheric enlargement and no macrocephaly.
  • Seizure onset often later than infancy, and hemiparesis is not expected.
Show evidence (1 reference)
PMID:37149062 SUPPORT Other
"The 'mTORopathies' comprise a spectrum of cortical malformations that range from whole brain (megalencephaly) and hemispheric (hemimegalencephaly) abnormalities to focal abnormalities, such as focal cortical dysplasia type II (FCDII), which manifest with drug-resistant epilepsies."
States the spectrum relationship explicitly, placing the two at different points on one axis of extent.
Overlapping Features Reaches the same pathway state by losing an mTOR repressor, and is the member of the spectrum in which pathway-directed therapy is already proven. The distinction is not that repressor loss is out of scope for hemimegalencephaly, since TSC1 and TSC2 loss of function is confirmed in hemimegalencephaly itself and is modeled as its own node in this entry. The distinction is anatomical and one of genetic architecture: germline loss present in every cell, producing bilateral multifocal tubers, versus a mosaic or two-hit lesion confined to one hemisphere.
Distinguishing Features
  • Germline TSC1 or TSC2 variants present in every cell and detectable in blood.
  • Bilateral and multifocal cortical tubers rather than one enlarged hemisphere.
  • Systemic features including skin, renal, and cardiac lesions.
Show evidence (1 reference)
PMID:37149062 SUPPORT Other
"The spectrum of cortical dysplasia results from somatic brain mutations in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2, NPRL3, TSC1 and TSC2."
Names the repressor-loss route that distinguishes tuberous sclerosis from the activator-gain route of hemimegalencephaly.
{ }

Source YAML

click to show
name: Hemimegalencephaly
creation_date: "2026-08-05T00:00:00Z"
category: Somatic mosaic
description: >-
  Hemimegalencephaly is overgrowth of one cerebral hemisphere, present at birth,
  with a disorganized cortex that is intrinsically epileptogenic. Babies present
  in the first months of life with seizures that do not respond to medication,
  and they accrue hemiparesis, visual field loss, and developmental impairment.
  It is a mosaic disease: a variant arises in a single progenitor cell during
  brain development, in the signalling cascade that tells cells how large to grow
  and when to divide, and every descendant of that cell inherits it while the
  rest of the body does not. Because the variant is confined to brain, blood
  testing is normal and the diagnosis was molecularly invisible until surgical
  tissue could be sequenced. The definitive treatment is disconnection or removal
  of the affected hemisphere, which is as drastic as it sounds and works
  remarkably well.
parents:
  - Epilepsy
  - Neurological Disease
synonyms:
  - HME
  - unilateral megalencephaly
classifications:
  harrisons_chapter:
    - classification_value: NEUROLOGIC
      notes: >-
        Presents and is managed as a drug-resistant infantile epilepsy arising
        from a structural brain malformation.
disease_term:
  preferred_term: hemimegalencephaly
  term:
    id: MONDO:0020492
    label: hemimegalencephaly
mappings:
  mondo_mappings:
    - term:
        id: MONDO:0020492
        label: hemimegalencephaly
      mapping_predicate: skos:exactMatch
      mapping_source: MONDO
      mapping_justification: >-
        MONDO:0020492 is the hemimegalencephaly concept, the unihemispheric
        cortical overgrowth malformation this entry models.
references:
  - reference: PMID:22729223
    title: >-
      De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway cause
      hemimegalencephaly.
  - reference: PMID:37149062
    title: >-
      mTOR pathway: Insights into an established pathway for brain mosaicism in
      epilepsy.
  - reference: PMID:37975663
    title: >-
      Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
      Hemispherectomy for Drug-Resistant Epilepsy.
notes: >-
  Scope note. This entry models isolated hemimegalencephaly as a somatic mosaic
  disorder of mTOR-pathway signalling. The syndromic forms, in which
  hemimegalencephaly occurs alongside epidermal nevus, hypomelanosis of Ito, or a
  segmental overgrowth syndrome, share the same pathway and often the same genes,
  and are treated here as the same mechanism expressed in a lineage that also
  populated skin or other tissues rather than as separate diseases. What differs
  between them is which progenitor acquired the variant and how early, not what
  the variant does.

  No mechanistic_category is asserted. The schema's mechanistic_category enum is
  closed and contains no value for the mTORopathies, and none of the available
  values fits, so the classifications block carries only the Harrison's chapter
  rather than a forced approximation.

  On the mosaicism. The causal variant is present in only a fraction of cells even
  within the malformed hemisphere, at reported allele fractions of roughly a tenth
  to two fifths, and is absent from blood. This is why the disease resisted
  molecular explanation for so long and why a negative blood test means nothing.
  It is also why the graph carries an explicit node for the mosaic gradient rather
  than treating the variant as if it were germline: the fraction of affected cells
  is a mechanistic variable, not a technical detail.

  Sourcing note. The entry was drafted from the founding somatic-variant study,
  the mTORopathy review, the surgical meta-analysis, and the precision-therapy
  review, then cross-checked against a deep-research report generated with the
  claude_code provider and committed here as
  research/Hemimegalencephaly-deep-research-claude_code.md. The cross-check
  confirmed the mechanism graph and sharpened one proposed experiment, by pointing
  out that cerebrospinal fluid cell-free DNA has poor sensitivity for these
  variants, so a contralateral study must establish its detection floor before a
  negative result means anything. It also surfaced four further gaps that are
  deliberately not curated as discussions in this pass, because doing so
  responsibly needs sources fetched and snippet-verified rather than taken from
  the report: that no animal model reproduces hemisphere-scale unilateral
  overgrowth, since rodents lack the outer radial glia biology that scales human
  cortex; that mouse and human data disagree on whether interneuron mTOR
  activation contributes; that prenatal but not postnatal pathway inhibition
  rescues the malformation in mice, which would sharpen the therapy gap already
  curated here; and that no validated non-invasive molecular diagnostic exists, so
  molecular diagnosis currently requires removing the hemisphere first. These are
  flagged here as the obvious next curation pass rather than asserted now.

  Module conformance note. Two nodes conform to
  epilepsy_excitation_inhibition_imbalance, at the hyperexcitability and
  recurrent-seizure nodes. The module's ion-channel trigger is not claimed,
  because the proximal lesion here is a growth-signalling one and the route from
  overgrowth to hyperexcitability runs through abnormal cytoarchitecture rather
  than through a channel defect.
inheritance:
  - name: Somatic mosaic, arising de novo after fertilization
    description: >-
      Not inherited and not heritable. The variant arises in a single neural
      progenitor during cortical development, so it is confined to that cell's
      descendants within the brain. Parents are unaffected, recurrence risk for
      siblings is essentially that of the general population, and the affected
      individual cannot transmit it, since the germline does not carry it. The
      counselling message is unusually reassuring for a severe malformation, and
      it depends on the diagnosis being understood as mosaic rather than genetic
      in the familial sense.
    inheritance_term:
      preferred_term: Sporadic
      term:
        id: HP:0003745
        label: Sporadic
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Exome sequencing and mass spectrometry analysis in paired brain-blood
          samples from individuals with HME (n = 20 cases) identified de novo
          somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and
          MTOR genes.
        explanation: >-
          Establishes the de novo somatic origin using the paired brain and blood
          design that is the only way to demonstrate it.
pathophysiology:
  - name: Postzygotic Somatic Variant in the PI3K-AKT3-mTOR Pathway
    biological_scale: MOLECULAR
    description: >-
      A gain-of-function variant arises after fertilization in one neural
      progenitor, in PIK3CA, AKT3, or MTOR itself. The same recurrent PIK3CA
      change turns up independently in unrelated patients, which is the signature
      of a specific activating hotspot rather than of random damage. The variant
      is detectable in resected brain and absent from blood, so it could only be
      found once hemispherectomy tissue was available for sequencing.
    genes:
      - preferred_term: PIK3CA
        term:
          id: hgnc:8975
          label: PIK3CA
      - preferred_term: AKT3
        term:
          id: hgnc:393
          label: AKT3
      - preferred_term: MTOR
        term:
          id: hgnc:3942
          label: MTOR
    downstream:
      - target: Mosaic Variant Gradient Within the Affected Hemisphere
      - target: Constitutive mTOR Pathway Activation
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          A recurrent PIK3CA c.1633G>A mutation was found in four separate cases.
        explanation: >-
          Recurrence of the identical change across unrelated patients is what
          distinguishes an activating hotspot from incidental somatic noise.
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          The intractable epilepsy that is associated with HME can be relieved by
          the surgical treatment hemispherectomy, allowing sampling of diseased
          tissue.
        explanation: >-
          Explains why this molecular etiology was inaccessible until surgery
          provided brain tissue, which is the reason the disease was described as
          a mystery for decades.
  - name: Mosaic Variant Gradient Within the Affected Hemisphere
    biological_scale: CELLULAR
    description: >-
      Only a minority of cells in the malformed hemisphere carry the variant, at
      allele fractions reported between roughly eight and forty percent across
      sampled regions. That gradient is mechanistically important rather than a
      sampling artefact: the size of the affected clone, and how early in
      development it arose, set how much cortex is malformed and how sharply the
      abnormality stops at the midline. It also sets a hard floor on detection,
      since a low-fraction variant in a small resected fragment can be missed.
    biological_processes:
      - preferred_term: neuron migration
        term:
          id: GO:0001764
          label: neuron migration
        modifier: ABNORMAL
    downstream:
      - target: Dysregulated Progenitor Growth and Proliferation
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Identified mutations were present in 8-40% of sequenced alleles in
          various brain regions
        explanation: >-
          Quantifies the mosaic fraction and its variation between regions, which
          is what this node encodes.
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Thus HME is probably a genetically mosaic disease caused by gain of
          function in phosphatidylinositol 3-kinase (PI3K)-AKT3-mTOR signaling.
        explanation: >-
          States the mosaic disease model that this node and its upstream neighbour
          together represent.
  - name: Loss of Function in an mTOR Pathway Repressor
    biological_scale: MOLECULAR
    description: >-
      The second route into the same pathway state, and one this entry originally
      filed under a different disease. Loss-of-function variants in the negative
      regulators of the pathway are confirmed in hemimegalencephaly itself, not
      only in tuberous sclerosis: DEPDC5, NPRL2, NPRL3, PTEN, TSC1, and TSC2 have
      all been implicated. In some of these the mechanism is a two-hit
      combination, a germline variant in one allele plus a somatic mosaic second
      hit in brain, which is a different genetic architecture from the single
      somatic activating variant but converges on the same output. That two-hit
      shape also means the germline half is detectable in blood, which is the one
      circumstance in which a blood test is informative in this disease.
    genes:
      - preferred_term: DEPDC5
        term:
          id: hgnc:18423
          label: DEPDC5
    biological_processes:
      - preferred_term: TOR signaling
        term:
          id: GO:0031929
          label: TOR signaling
        modifier: INCREASED
    downstream:
      - target: Constitutive mTOR Pathway Activation
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Studies have also confirmed loss-of-function variants in negative
          regulators of the mTOR pathway in FCD and HME, including in DEPDC5,
          NPRL2, NPRL3, PTEN, TSC1, and TSC2
        explanation: >-
          States that repressor loss of function causes hemimegalencephaly itself,
          which is what licenses this node rather than leaving the repressor arm
          filed under a differential diagnosis.
  - name: Constitutive mTOR Pathway Activation
    biological_scale: MOLECULAR
    description: >-
      The variants converge on one output: the mTOR cascade is switched on when it
      should not be. This can be shown directly in patient brain as increased
      phosphorylation of the ribosomal protein S6, the standard downstream readout
      of mTOR activity, in the neurons of affected individuals. The same
      convergence is what places hemimegalencephaly in a spectrum with tuberous
      sclerosis and focal cortical dysplasia type II, which reach the same endpoint
      from the opposite direction by losing pathway repressors.
    biological_processes:
      - preferred_term: TOR signaling
        term:
          id: GO:0031929
          label: TOR signaling
        modifier: INCREASED
    downstream:
      - target: Dysregulated Progenitor Growth and Proliferation
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          were associated with increased neuronal S6 protein phosphorylation in the
          brains of affected individuals, indicating aberrant activation of
          mammalian target of rapamycin (mTOR) signaling
        explanation: >-
          Direct demonstration in patient brain that the variants actually activate
          the pathway, rather than merely being predicted to.
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          The spectrum of cortical dysplasia results from somatic brain mutations
          in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from
          germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2,
          NPRL3, TSC1 and TSC2.
        explanation: >-
          Establishes the convergence that makes this node the hub of the entry:
          activator gain and repressor loss produce the same pathway state and a
          related family of malformations.
  - name: Dysregulated Progenitor Growth and Proliferation
    biological_scale: CELLULAR
    description: >-
      mTOR is the cell's decision-maker about growth, and switching it on
      constitutively during corticogenesis produces cells that are too big and too
      numerous, and that migrate and laminate badly. The cellular signature in
      tissue is the cytomegalic neuron, an enormously enlarged cell, sometimes with
      balloon cells alongside. The consequences are structural rather than purely
      metabolic, which is why the resulting cortex is permanently abnormal rather
      than transiently dysfunctional.
    cell_types:
      - preferred_term: neuron
        term:
          id: CL:0000540
          label: neuron
    biological_processes:
      - preferred_term: cell growth
        term:
          id: GO:0016049
          label: cell growth
        modifier: INCREASED
    downstream:
      - target: Unihemispheric Overgrowth and Cortical Dyslamination
    evidence:
      - reference: PMID:26060899
        reference_title: Focal Cortical Dysplasia.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          based on the severity of cytoarchitectural disruption--tangential or
          radial dispersion, or loss of laminar structure--and the presence of
          unique cells types such as cytomegalic neurons or balloon cells
        explanation: >-
          Describes the cytoarchitectural and cellular consequences this node
          asserts, in the malformation family hemimegalencephaly belongs to.
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          The mechanistic target of rapamycin (mTOR) signaling pathway is an
          essential regulator of numerous cellular activities such as metabolism,
          growth, proliferation, and survival.
        explanation: >-
          States the normal function whose dysregulation produces the growth
          phenotype, which is why an mTOR variant yields overgrowth specifically.
  - name: Unihemispheric Overgrowth and Cortical Dyslamination
    biological_scale: TISSUE
    description: >-
      The affected hemisphere is enlarged and structurally wrong, with a thickened
      and poorly laminated cortex, blurred grey-white boundary, and abnormal
      gyration. The abnormality respects the midline almost completely, which is
      the imaging signature and the anatomical fact that makes hemispheric surgery
      conceivable. The unaffected hemisphere is not entirely normal in function,
      which becomes important when surgery is considered.
    locations:
      - preferred_term: cerebral hemisphere
        term:
          id: UBERON:0001869
          label: cerebral hemisphere
    downstream:
      - target: Intrinsically Epileptogenic Dysplastic Cortex
      - target: Hemiparesis and Developmental Impairment
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is a rare diffuse malformation of cortical
          development characterized by unihemispheric hypertrophy, drug-resistant
          epilepsy (DRE), hemiparesis, and developmental delay.
        explanation: >-
          States the unihemispheric hypertrophy that defines this node and the
          three clinical consequences that follow from it.
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is characterized by overgrowth of either one of
          the two cerebral hemispheres.
        explanation: >-
          Establishes the defining anatomical abnormality and that either side may
          be affected.
  - name: Intrinsically Epileptogenic Dysplastic Cortex
    biological_scale: CELLULAR
    conforms_to: "epilepsy_excitation_inhibition_imbalance#Neuronal Hyperexcitability and Hypersynchrony"
    description: >-
      Dysplastic cortex does not merely sit there; it generates seizures. Loss of
      laminar organization disrupts the normal segregation of excitatory and
      inhibitory connectivity, and cytomegalic neurons have abnormal intrinsic
      excitability, so the malformed tissue is an epileptogenic generator in its
      own right. That is why the epilepsy is intractable to medication from the
      outset and why removing or disconnecting the tissue, rather than suppressing
      it pharmacologically, is what works.
    cell_types:
      - preferred_term: neuron
        term:
          id: CL:0000540
          label: neuron
    downstream:
      - target: Drug-Resistant Epilepsy of Infantile Onset
    evidence:
      - reference: PMID:26060899
        reference_title: Focal Cortical Dysplasia.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Focal cortical dysplasias are common malformations of cerebral cortical
          development and are highly associated with medically intractable
          epilepsy.
        explanation: >-
          Establishes the intrinsic epileptogenicity of dysplastic cortex in the
          malformation family this disease belongs to.
      - reference: PMID:26060899
        reference_title: Focal Cortical Dysplasia.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Most focal cortical dysplasias can be identified on neuroimaging and many
          require resective epilepsy surgery to cure refractory seizures.
        explanation: >-
          Supports the claim that the tissue itself is the generator, since
          removing it is what cures the seizures.
  - name: Drug-Resistant Epilepsy of Infantile Onset
    biological_scale: ORGANISM
    conforms_to: "epilepsy_excitation_inhibition_imbalance#Recurrent Unprovoked Seizures"
    description: >-
      Seizures typically begin in the first months of life, often as infantile
      spasms or focal seizures, and are refractory to antiseizure medication.
      Drug resistance is close to definitional and it is the reason surgery is
      considered so early, in babies, when the developing brain still has the
      plasticity to reorganize function after losing a hemisphere.
    downstream:
      - target: Hemiparesis and Developmental Impairment
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Definitive treatment for HME-related DRE is hemispheric surgery through
          either anatomic (AH) or functional hemispherectomy (FH).
        explanation: >-
          States that the drug-resistant epilepsy of this disease is treated
          surgically rather than medically, which is the practical content of drug
          resistance here.
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          which manifest with drug-resistant epilepsies
        explanation: >-
          Confirms drug resistance as the characteristic epilepsy phenotype of the
          malformation spectrum including hemimegalencephaly.
  - name: Hemiparesis and Developmental Impairment
    biological_scale: ORGANISM
    description: >-
      The clinical endpoint: weakness on the side opposite the malformed
      hemisphere, visual field loss, and global developmental impairment. Two
      processes contribute and are hard to separate, which matters for prognosis.
      Part of the deficit is structural and present from birth, the direct cost of
      having one hemisphere built wrong. Part is acquired, the cost of years of
      uncontrolled seizures in a developing brain, and it is the part surgery is
      meant to prevent.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is a rare diffuse malformation of cortical
          development characterized by unihemispheric hypertrophy, drug-resistant
          epilepsy (DRE), hemiparesis, and developmental delay.
        explanation: >-
          Names the hemiparesis and developmental delay that constitute this
          endpoint.
phenotypes:
  - category: Neurologic
    name: Hemimegalencephaly
    description: >-
      Enlargement and structural disorganization of one cerebral hemisphere,
      visible on imaging from birth and the defining feature of the disease.
    phenotype_term:
      preferred_term: Hemimegalencephaly
      term:
        id: HP:0007206
        label: Hemimegalencephaly
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is characterized by overgrowth of either one of
          the two cerebral hemispheres.
        explanation: >-
          States the defining anatomical abnormality.
  - category: Neurologic
    name: Drug-resistant epilepsy
    description: >-
      Seizures beginning in infancy that do not respond to antiseizure medication,
      often presenting as infantile spasms or focal seizures.
    phenotype_term:
      preferred_term: Seizure
      term:
        id: HP:0001250
        label: Seizure
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is a rare diffuse malformation of cortical
          development characterized by unihemispheric hypertrophy, drug-resistant
          epilepsy (DRE), hemiparesis, and developmental delay.
        explanation: >-
          Names drug-resistant epilepsy as a defining feature of the disease.
  - category: Neurologic
    name: Hemiparesis
    description: >-
      Weakness of the limbs contralateral to the malformed hemisphere, present
      before surgery and expected to persist or worsen after it, which is part of
      the surgical calculus.
    phenotype_term:
      preferred_term: Hemiparesis
      term:
        id: HP:0001269
        label: Hemiparesis
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is a rare diffuse malformation of cortical
          development characterized by unihemispheric hypertrophy, drug-resistant
          epilepsy (DRE), hemiparesis, and developmental delay.
        explanation: >-
          Names hemiparesis as a defining feature.
  - category: Neurologic
    name: Global developmental delay
    description: >-
      Developmental impairment across domains, attributable partly to the
      malformation itself and partly to the seizure burden accumulated before
      surgery.
    phenotype_term:
      preferred_term: Global developmental delay
      term:
        id: HP:0001263
        label: Global developmental delay
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is a rare diffuse malformation of cortical
          development characterized by unihemispheric hypertrophy, drug-resistant
          epilepsy (DRE), hemiparesis, and developmental delay.
        explanation: >-
          Names developmental delay as a defining feature.
  - category: Ophthalmologic
    name: Hemianopia
    description: >-
      Visual field loss contralateral to the malformed hemisphere. Curated as a
      first-class phenotype because it is present before surgery and is part of
      the permanent cost of hemispherectomy, so it belongs in the consent
      conversation rather than only in the prose.
    phenotype_term:
      preferred_term: Hemianopia
      term:
        id: HP:0012377
        label: Hemianopia
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          for patients with HME, contralateral hemiparesis and hemianopia are
          commonly reported
        explanation: >-
          States the hemianopia and its contralateral laterality specifically for
          this disease. No frequency band is asserted because commonly reported is
          not a quantified figure.
  - category: Craniofacial
    name: Macrocephaly
    description: >-
      Enlarged head circumference reflecting the hemispheric overgrowth, often the
      finding that prompts imaging in a newborn.
    phenotype_term:
      preferred_term: Macrocephaly
      term:
        id: HP:0000256
        label: Macrocephaly
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Hemimegalencephaly (HME) is characterized by overgrowth of either one of
          the two cerebral hemispheres.
        explanation: >-
          Supports the hemispheric overgrowth from which the head enlargement
          follows. Marked PARTIAL because the source describes the brain rather
          than measuring head circumference.
genetic:
  - name: PIK3CA
    gene_term:
      preferred_term: PIK3CA
      term:
        id: hgnc:8975
        label: PIK3CA
    relationship_type: CAUSATIVE
    association: >-
      Somatic gain-of-function variants in PIK3CA, present in brain and absent
      from blood, are among the commonest identified causes. A recurrent
      c.1633G>A change was found independently in four patients, which is the
      pattern expected of an activating hotspot.
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          A recurrent PIK3CA c.1633G>A mutation was found in four separate cases.
        explanation: >-
          Documents the recurrent activating variant in unrelated patients.
  - name: AKT3
    gene_term:
      preferred_term: AKT3
      term:
        id: hgnc:393
        label: AKT3
    relationship_type: CAUSATIVE
    association: >-
      Somatic activating variants in AKT3, the brain-enriched AKT isoform, are one
      of the three genes identified in the original brain-blood paired sequencing
      study and remain a recognized cause.
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          identified de novo somatic mutations in 30% of affected individuals in
          the PIK3CA, AKT3 and MTOR genes
        explanation: >-
          Names AKT3 among the causative genes and quantifies the overall
          diagnostic yield.
  - name: MTOR
    gene_term:
      preferred_term: MTOR
      term:
        id: hgnc:3942
        label: MTOR
    relationship_type: CAUSATIVE
    association: >-
      Somatic activating variants in MTOR itself cause the disease, which is the
      cleanest demonstration that the pathway rather than any particular upstream
      component is what matters.
    evidence:
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          The spectrum of cortical dysplasia results from somatic brain mutations
          in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from
          germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2,
          NPRL3, TSC1 and TSC2.
        explanation: >-
          Names MTOR among the somatic activators causing this malformation
          spectrum.
  - name: RHEB and AKT1
    gene_term:
      preferred_term: RHEB
      term:
        id: hgnc:10011
        label: RHEB
    relationship_type: CAUSATIVE
    association: >-
      Two further pathway activators confirmed in this disease beyond the three
      found in the founding study. RHEB is the small GTPase that activates mTOR
      complex 1 directly, so an activating variant in it is about as proximal to
      the pathway output as a variant can be.
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          activating variants in positive regulators of the mTOR pathway in FCD and
          HME, including variants in AKT1, AKT3, MTOR, PIK3CA, and RHEB
        explanation: >-
          Names RHEB and AKT1 alongside the three genes already curated, and does
          so for hemimegalencephaly specifically rather than for the spectrum in
          general.
  - name: mTOR pathway repressors
    gene_term:
      preferred_term: DEPDC5
      term:
        id: hgnc:18423
        label: DEPDC5
    relationship_type: CAUSATIVE
    association: >-
      Loss-of-function variants in the negative regulators DEPDC5, NPRL2, NPRL3,
      PTEN, TSC1, and TSC2 are confirmed causes of hemimegalencephaly, sometimes
      through a two-hit combination of a germline variant and a somatic mosaic
      second hit in brain. DEPDC5 is named as the representative because it is a
      GATOR1 component and therefore repressor loss in the amino-acid-sensing arm
      rather than in the growth-factor arm, which may not behave identically.
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Studies have also confirmed loss-of-function variants in negative
          regulators of the mTOR pathway in FCD and HME, including in DEPDC5,
          NPRL2, NPRL3, PTEN, TSC1, and TSC2
        explanation: >-
          Enumerates the repressor genes confirmed in this disease, which is what
          this record curates.
prevalence:
  - population: Children undergoing epilepsy surgery
    measure_type: UNKNOWN
    prevalence_class: ULTRA_RARE
    notes: >-
      No population-based prevalence estimate exists. The disease is described as
      rare in the surgical literature, and the largest available synthesis pooled
      145 operated patients from 26 studies, which indicates the order of
      magnitude of the published experience rather than a rate.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Data from 145 patients were extracted from 26 studies
        explanation: >-
          Indicates the scale of the pooled published surgical experience. Marked
          PARTIAL because a case count in operated patients is not a population
          rate.
progression:
  - phase: Neonatal presentation with intractable seizures
    age_range: First months of life
    notes: >-
      The malformation is present at birth and seizures usually begin within the
      first months, frequently as infantile spasms. Antiseizure medication rarely
      controls them, and the question becomes surgical early rather than after
      years of trials.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Definitive treatment for HME-related DRE is hemispheric surgery through
          either anatomic (AH) or functional hemispherectomy (FH).
        explanation: >-
          Establishes that surgery rather than medication is the definitive
          treatment, which is what drives the early surgical timeline.
  - phase: Post-surgical seizure freedom in most, recurrence in a minority
    age_range: Months to years after surgery
    notes: >-
      Roughly four in five operated children reach seizure freedom, and the two
      surgical approaches perform comparably. The strongest predictor of
      recurrence is not which operation was done but whether the
      electroencephalogram showed bilateral ictal abnormality beforehand, which
      points to the supposedly normal hemisphere being involved.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          presence of bilateral ictal electroencephalography abnormalities (hazard
          ratio = 11.5; P = .002) was significantly associated with faster
          time-to-seizure recurrence
        explanation: >-
          Quantifies the predictor of recurrence described in this phase and
          motivates the surgical discussion in this entry.
treatments:
  - name: Hemispherectomy
    description: >-
      Removing or disconnecting the affected hemisphere is the definitive
      treatment, and it is offered in infancy because that is when the remaining
      hemisphere can still take over language and motor function. The anatomic and
      functional variants achieve comparable seizure outcomes, so the choice turns
      on operative morbidity rather than efficacy. The trade is explicit and
      permanent: a fixed hemiparesis and hemianopia in exchange for stopping
      seizures that would otherwise continue to damage the developing brain.
    therapeutic_modality: SURGERY
    treatment_term:
      preferred_term: hemispherectomy
      term:
        id: NCIT:C15329
        label: Surgical Procedure
    target_mechanisms:
      - target: Intrinsically Epileptogenic Dysplastic Cortex
        treatment_effect: INHIBITS
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Definitive treatment for HME-related DRE is hemispheric surgery through
          either anatomic (AH) or functional hemispherectomy (FH).
        explanation: >-
          States that hemispheric surgery is the definitive treatment.
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Cohorts were similar in preoperative characteristics and at the last
          follow-up; 77% (n = 66) of the FH cohort and 81%
        explanation: >-
          Documents the comparable seizure outcomes between the two surgical
          approaches, which is why the choice is made on morbidity rather than
          efficacy.
  - name: Antiseizure medication
    description: >-
      Medication is started first but rarely controls the seizures, and its role is
      to hold the line while surgical assessment proceeds rather than to be the
      definitive answer.
    therapeutic_modality: SMALL_MOLECULE
    treatment_term:
      preferred_term: Pharmacotherapy
      term:
        id: NCIT:C15986
        label: Pharmacotherapy
    target_mechanisms:
      - target: Drug-Resistant Epilepsy of Infantile Onset
        treatment_effect: INHIBITS
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Initial treatment with antiseizure medications is empiric, and
          consideration of surgery is the standard of care for eligible patients
          with medically refractory epilepsy.
        explanation: >-
          States both the empiric first-line role of medication and the escalation
          to surgery that defines its limits in this disease.
  - name: mTOR inhibition
    description: >-
      Directly inhibiting the overactive pathway is the obvious precision therapy,
      and it is already approved for refractory seizures in tuberous sclerosis,
      which reaches the same pathway state by losing a repressor. Whether it works
      in hemimegalencephaly is not yet established: clinical study here is
      described as just emerging. It is curated as a rational but unproven option
      rather than as practice, and the gap is recorded in the discussions block.
    therapeutic_modality: SMALL_MOLECULE
    treatment_term:
      preferred_term: Pharmacotherapy
      term:
        id: NCIT:C15986
        label: Pharmacotherapy
      therapeutic_agent:
        - preferred_term: everolimus
          term:
            id: CHEBI:68478
            label: everolimus
    target_mechanisms:
      - target: Constitutive mTOR Pathway Activation
        treatment_effect: INHIBITS
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Based on extensive pre-clinical and clinical data, the mTOR inhibitor
          everolimus is currently approved for the treatment of focal refractory
          seizures in patients with TSC.
        explanation: >-
          Establishes that pathway inhibition works for seizures in the
          repressor-loss member of this spectrum, which is the entire rationale for
          trying it here.
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Although clinical studies are just emerging for FCD and HME, we believe
          the next decade will bring significant advancements in precision
          therapies for epilepsy related to these and other MCDs.
        explanation: >-
          States plainly that the evidence in this disease does not yet exist,
          which is why this record is PARTIAL and framed as rational rather than
          established.
diagnosis:
  - name: Brain MRI
    description: >-
      Imaging makes the diagnosis. The enlarged hemisphere with thickened, poorly
      laminated cortex and blurred grey-white boundary is recognizable, and the
      abnormality stopping at the midline is what distinguishes it from a
      bilateral malformation.
    diagnosis_term:
      preferred_term: Magnetic Resonance Imaging
      term:
        id: NCIT:C16809
        label: Magnetic Resonance Imaging
    results: >-
      Unihemispheric enlargement with cortical thickening, abnormal gyration, and
      loss of the normal grey-white junction, respecting the midline.
    evidence:
      - reference: PMID:26060899
        reference_title: Focal Cortical Dysplasia.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Most focal cortical dysplasias can be identified on neuroimaging and many
          require resective epilepsy surgery to cure refractory seizures.
        explanation: >-
          Establishes imaging identification for this malformation family, which is
          the basis of the diagnostic approach here.
  - name: Somatic variant testing on resected brain tissue
    description: >-
      Molecular diagnosis requires brain, not blood. Sequencing resected tissue
      finds a pathway variant in roughly a third of patients; a normal blood test
      excludes nothing, and even brain sequencing can miss a low-fraction variant
      in a small sample. This is the practical reason a molecular diagnosis is
      usually made after surgery rather than before it.
    diagnosis_term:
      preferred_term: Genetic Testing
      term:
        id: NCIT:C15709
        label: Genetic Testing
    results: >-
      A somatic activating variant in PIK3CA, AKT3, or MTOR in brain tissue at an
      allele fraction well below the germline expectation, absent from blood.
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Exome sequencing and mass spectrometry analysis in paired brain-blood
          samples from individuals with HME (n = 20 cases) identified de novo
          somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and
          MTOR genes.
        explanation: >-
          Documents both the paired brain-blood method and the diagnostic yield
          reported in the results field.
  - name: Electroencephalography including assessment of the contralateral hemisphere
    description: >-
      Beyond confirming the epilepsy, the electroencephalogram carries specific
      surgical prognostic weight: bilateral ictal abnormality predicts faster
      seizure recurrence after hemispherectomy by a large margin, which is
      information a family needs before consenting to the operation.
    diagnosis_term:
      preferred_term: Electroencephalography
      term:
        id: NCIT:C38054
        label: Electroencephalography
    results: >-
      Epileptiform abnormality over the malformed hemisphere, with the presence or
      absence of independent contralateral ictal activity as the prognostically
      decisive finding.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          presence of bilateral ictal electroencephalography abnormalities (hazard
          ratio = 11.5; P = .002) was significantly associated with faster
          time-to-seizure recurrence
        explanation: >-
          Quantifies the prognostic value that makes this test decision-relevant
          rather than merely confirmatory.
differential_diagnoses:
  - name: Focal Cortical Dysplasia Type II
    disease_term:
      preferred_term: isolated focal cortical dysplasia type II
      term:
        id: MONDO:0011818
        label: isolated focal cortical dysplasia type II
    description: >-
      The same disease mechanism at a smaller scale: a somatic mTOR-pathway
      variant in a smaller or later clone, producing a focal rather than
      hemispheric malformation. The distinction is one of extent, which is
      precisely why it is a differential and not an unrelated condition.
    distinguishing_features:
      - Focal lesion amenable to targeted resection rather than hemispheric surgery.
      - No hemispheric enlargement and no macrocephaly.
      - Seizure onset often later than infancy, and hemiparesis is not expected.
    evidence:
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          The 'mTORopathies' comprise a spectrum of cortical malformations that
          range from whole brain (megalencephaly) and hemispheric
          (hemimegalencephaly) abnormalities to focal abnormalities, such as focal
          cortical dysplasia type II (FCDII), which manifest with drug-resistant
          epilepsies.
        explanation: >-
          States the spectrum relationship explicitly, placing the two at different
          points on one axis of extent.
  - name: Tuberous Sclerosis Complex
    disease_term:
      preferred_term: tuberous sclerosis
      term:
        id: MONDO:0001734
        label: tuberous sclerosis
    description: >-
      Reaches the same pathway state by losing an mTOR repressor, and is the
      member of the spectrum in which pathway-directed therapy is already proven.
      The distinction is not that repressor loss is out of scope for
      hemimegalencephaly, since TSC1 and TSC2 loss of function is confirmed in
      hemimegalencephaly itself and is modeled as its own node in this entry. The
      distinction is anatomical and one of genetic architecture: germline loss
      present in every cell, producing bilateral multifocal tubers, versus a
      mosaic or two-hit lesion confined to one hemisphere.
    distinguishing_features:
      - Germline TSC1 or TSC2 variants present in every cell and detectable in blood.
      - Bilateral and multifocal cortical tubers rather than one enlarged hemisphere.
      - Systemic features including skin, renal, and cardiac lesions.
    evidence:
      - reference: PMID:37149062
        reference_title: >-
          mTOR pathway: Insights into an established pathway for brain mosaicism in
          epilepsy.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          The spectrum of cortical dysplasia results from somatic brain mutations
          in the mTOR pathway activators AKT3, MTOR, PIK3CA, and RHEB and from
          germline and somatic mutations in mTOR pathway repressors, DEPDC5, NPRL2,
          NPRL3, TSC1 and TSC2.
        explanation: >-
          Names the repressor-loss route that distinguishes tuberous sclerosis from
          the activator-gain route of hemimegalencephaly.
discussions:
  - discussion_id: hme_missing_causal_variants
    kind: KNOWLEDGE_GAP
    status: OPEN
    prompt: >-
      A causal variant is found in only about a third of hemimegalencephaly
      brains. Where are the other two thirds, and is the shortfall a detection
      problem or a biology problem?
    attaches_to:
      - pathophysiology#Postzygotic Somatic Variant in the PI3K-AKT3-mTOR Pathway
      - pathophysiology#Mosaic Variant Gradient Within the Affected Hemisphere
    rationale: >-
      The founding study sequenced paired brain and blood and found a pathway
      variant in 30 percent of cases. That was a triumph at the time and it is
      still a majority unexplained. Two very different explanations are available
      and they have different consequences. The detection account notes that the
      variants that were found sat at allele fractions as low as eight percent, and
      that a resected fragment samples only part of a hemisphere; a clone that
      arose slightly later, or one whose densest region was not the piece sent for
      sequencing, would be invisible to bulk exome sequencing at standard depth. On
      this view the missing variants are in the same genes, and deeper or
      single-cell sequencing of multiple regions should find them. The biology
      account holds that some hemimegalencephaly is caused by something other than
      a point variant in these three genes: a variant in a different pathway
      member, a structural or copy-number event, or a non-genetic developmental
      insult producing the same endpoint. The two are distinguishable and the
      answer matters directly for the therapy question curated separately in this
      entry, because a pathway-directed drug can only help patients whose disease
      actually runs through that pathway.
    proposed_experiments:
      - experiment_id: exp_hme_deep_multiregion_sequencing
        name: Deep multi-region and single-cell sequencing of variant-negative brains
        description: >-
          Take hemispherectomy specimens from patients in whom standard exome
          sequencing found nothing, sample multiple anatomically defined regions
          including the most dysplastic tissue, and apply high-depth targeted
          sequencing of known pathway genes plus single-nucleus genome sequencing,
          with S6 phosphorylation immunostaining on adjacent sections as an
          orthogonal readout of whether the pathway is active.
        decision_criterion: >-
          Recovering pathway variants at low allele fraction in a substantial share
          of previously negative cases would identify the shortfall as a detection
          problem and would extend candidacy for pathway-directed therapy. Finding
          no variant in tissue that nonetheless shows strong S6 phosphorylation
          would point to a different route into the same pathway state; finding
          neither would suggest a genuinely different mechanism.
    evidence:
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Exome sequencing and mass spectrometry analysis in paired brain-blood
          samples from individuals with HME (n = 20 cases) identified de novo
          somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and
          MTOR genes.
        explanation: >-
          Establishes the 30 percent yield that defines the size of this gap.
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Identified mutations were present in 8-40% of sequenced alleles in
          various brain regions
        explanation: >-
          The low allele fractions that make the detection account plausible, and
          the between-region variation that makes sampling a real concern.
  - discussion_id: hme_why_does_hemispherectomy_fail
    kind: CONTROVERSY
    status: UNDER_DISCUSSION
    prompt: >-
      When seizures recur after an entire hemisphere has been disconnected, is the
      cause incomplete disconnection, or is the supposedly normal hemisphere
      independently abnormal, and does mosaicism predict which?
    attaches_to:
      - pathophysiology#Unihemispheric Overgrowth and Cortical Dyslamination
      - pathophysiology#Intrinsically Epileptogenic Dysplastic Cortex
    rationale: >-
      Roughly one operated child in five is not seizure-free, and the puzzle is
      sharp: if the seizure generator was the malformed hemisphere and that
      hemisphere is gone or disconnected, seizures should stop. The strongest clue
      is that bilateral ictal abnormality before surgery predicts faster recurrence
      by a hazard ratio above eleven, while the choice between anatomic and
      functional hemispherectomy predicts very little. That pattern favours the
      second reading, that the contralateral hemisphere is not truly normal. It
      sits comfortably with the mosaic model, since a variant-bearing clone that
      arose before the hemispheres separated could seed both sides, with the
      minority side too sparsely affected to look abnormal on imaging. The
      competing reading, incomplete disconnection, is not dead: functional
      hemispherectomy leaves tissue in place and depends on the completeness of the
      disconnection, and residual connections are a documented cause of failure in
      hemispheric surgery generally. What would separate them is a molecular
      question rather than a surgical one, and it has not been asked: nobody has
      systematically looked for the variant in the contralateral hemisphere. If the
      contralateral side carries it, bilateral electroencephalographic abnormality
      becomes a marker of clone distribution rather than a mysterious risk factor,
      and preoperative counselling gains a mechanism.
    proposed_experiments:
      - experiment_id: exp_hme_contralateral_variant_detection
        name: Variant detection in the contralateral hemisphere
        description: >-
          In patients undergoing hemispherectomy, seek the causal variant in
          contralateral tissue by the least invasive available route, including
          cerebrospinal fluid cell-free DNA and any contralateral tissue obtained
          for other reasons, and relate detection to preoperative bilateral
          electroencephalographic abnormality and to postoperative seizure outcome.
        decision_criterion: >-
          Detection of the variant contralaterally in patients with bilateral
          electroencephalographic abnormality and postoperative recurrence would
          establish the clone-distribution account and make cerebrospinal fluid
          testing a preoperative prognostic tool. Absence of contralateral variant
          in recurrent cases would shift the explanation back to incomplete
          disconnection and toward surgical technique. One design caution: the
          sensitivity of cerebrospinal fluid cell-free DNA for detecting these
          variants is currently poor, so a negative result would need to be
          interpreted against a measured detection floor rather than taken at face
          value, and the study is only informative if it establishes that floor
          first.
    evidence:
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          presence of bilateral ictal electroencephalography abnormalities (hazard
          ratio = 11.5; P = .002) was significantly associated with faster
          time-to-seizure recurrence
        explanation: >-
          The central observation of this controversy, and the reason the
          contralateral hemisphere is the leading suspect.
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Cohorts were similar in preoperative characteristics and at the last
          follow-up; 77% (n = 66) of the FH cohort and 81%
        explanation: >-
          Shows that the two surgical approaches perform comparably, which weakens
          the incomplete-disconnection account relative to the contralateral one,
          since the approach that leaves tissue behind does not do noticeably worse.
      - reference: PMID:22729223
        reference_title: >-
          De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway
          cause hemimegalencephaly.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Identified mutations were present in 8-40% of sequenced alleles in
          various brain regions
        explanation: >-
          Supports the plausibility of a clone distributed unevenly across regions.
          Marked PARTIAL because the regions sampled were within the affected
          hemisphere, so this does not itself demonstrate contralateral spread.
  - discussion_id: hme_can_mtor_inhibition_replace_surgery
    kind: KNOWLEDGE_GAP
    status: OPEN
    prompt: >-
      mTOR inhibition is approved for refractory seizures in tuberous sclerosis,
      which reaches the same pathway state by a different route. Can it control
      seizures in hemimegalencephaly, and if so does it delay or replace
      hemispherectomy, or merely postpone a surgery that should have happened
      sooner?
    attaches_to:
      - pathophysiology#Constitutive mTOR Pathway Activation
      - pathophysiology#Drug-Resistant Epilepsy of Infantile Onset
    rationale: >-
      The rationale is unusually clean for a precision therapy: the causal lesion
      activates a pathway, a licensed drug inhibits that pathway, and the drug
      already works for seizures in the disease at the other end of the same
      spectrum. Yet clinical study in hemimegalencephaly is described as only just
      emerging, and there are specific reasons it may not transfer. Tuberous
      sclerosis involves germline repressor loss in every cell, whereas here the
      lesion is a mosaic activating variant in a minority of cells, and it is not
      obvious that systemic inhibition reaches an adequate concentration in the
      right cells. More fundamentally, much of the pathology here is structural and
      already built: a hemisphere that developed with the wrong cytoarchitecture
      does not become normally laminated when the pathway is switched off in
      infancy. Inhibition might therefore reduce seizure burden without altering
      the epileptogenic substrate. That distinction is the crux, because the real
      risk is not that the drug fails but that partial benefit defers a
      hemispherectomy past the developmental window in which the remaining
      hemisphere can still take over language and motor function. A therapy that
      buys two years of milder seizures at the cost of a worse functional outcome
      after later surgery would be a poor trade, and nothing currently
      distinguishes that scenario from the good one.
    proposed_experiments:
      - experiment_id: exp_hme_mtor_inhibitor_trial_with_surgical_timing_endpoint
        name: mTOR inhibitor trial with surgical timing and developmental co-endpoints
        description: >-
          A trial of mTOR inhibition in infants with hemimegalencephaly that takes
          seizure frequency as its primary outcome but co-registers age at
          eventual hemispherectomy and post-surgical developmental and language
          outcome, so that any deferral of surgery is measured rather than assumed
          to be a benefit.
        decision_criterion: >-
          Seizure reduction without later surgery and with preserved developmental
          outcome would establish a genuine alternative. Seizure reduction
          accompanied by later surgery and worse post-surgical developmental
          outcome would show the drug is deferring rather than replacing the
          definitive treatment, and would argue for using it only as a bridge.
    evidence:
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Based on extensive pre-clinical and clinical data, the mTOR inhibitor
          everolimus is currently approved for the treatment of focal refractory
          seizures in patients with TSC.
        explanation: >-
          Establishes the proof of principle in the repressor-loss member of the
          spectrum, which is what makes this a live question rather than
          speculation.
      - reference: PMID:34608615
        reference_title: Precision Therapy for Epilepsy Related to Brain Malformations.
        supports: SUPPORT
        evidence_source: OTHER
        snippet: >-
          Although clinical studies are just emerging for FCD and HME, we believe
          the next decade will bring significant advancements in precision
          therapies for epilepsy related to these and other MCDs.
        explanation: >-
          States the absence of clinical evidence in this disease specifically,
          which is the gap.
      - reference: PMID:37975663
        reference_title: >-
          Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic
          Hemispherectomy for Drug-Resistant Epilepsy.
        supports: SUPPORT
        evidence_source: HUMAN_CLINICAL
        snippet: >-
          Definitive treatment for HME-related DRE is hemispheric surgery through
          either anatomic (AH) or functional hemispherectomy (FH).
        explanation: >-
          Establishes the standard against which any drug must be judged. Marked
          PARTIAL because it speaks to current practice rather than to whether
          pathway inhibition could change it.
📚

References & Deep Research

References

3
De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway cause hemimegalencephaly.
No top-level findings curated for this source.
mTOR pathway: Insights into an established pathway for brain mosaicism in epilepsy.
No top-level findings curated for this source.
Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic Hemispherectomy for Drug-Resistant Epilepsy.
No top-level findings curated for this source.

Deep Research

1
Claude Code
Hemimegalencephaly (HME) — Comprehensive Disease Characteristics Research Report
claude-haiku-4-5-20251001, claude-opus-5[1m] 2026-08-05T14:53:05.640833

Hemimegalencephaly (HME) — Comprehensive Disease Characteristics Research Report

Prepared: 2026-08-05 · Target MONDO: MONDO:0020492 · Category: somatic mosaic / malformation of cortical development

A note on evidence provenance before anything else. Where I quote below, I flag each quote as either [verbatim-verified] (I have the full abstract or full text in hand, either from this repo's references_cache/ or from a raw PubMed E-utilities fetch) or [secondhand — RE-VERIFY] (the quoted fragment came back through a summarizing fetch layer and has not been checked character-for-character against the real abstract). Anything in the second bucket must be run through just fetch-reference PMID:X and just validate-references before it is allowed anywhere near an evidence snippet:. Treating a summarizer's paraphrase as a quote is exactly the failure mode the dismech SOP exists to catch.


1. Disease Information

Overview

Hemimegalencephaly is a congenital, non-progressive-in-substrate but clinically devastating malformation of cortical development in which all or part of one cerebral hemisphere overgrows and is simultaneously mis-built. Think of it less as "one side got extra fertilizer" and more as a developmental program that lost its stop codon in one clone of progenitor cells: the affected hemisphere is bigger, but its cortex is thick, poorly layered, populated by grotesquely enlarged cells, and profoundly epileptogenic. The overgrowth and the dysplasia are two faces of one lesion, not two lesions.

The clinical triad that follows is near-obligate: drug-resistant epilepsy beginning in the newborn period or early infancy, contralateral hemiparesis, and global developmental delay.

"Hemimegalencephaly (HME) is a rare diffuse malformation of cortical development characterized by unihemispheric hypertrophy, drug-resistant epilepsy (DRE), hemiparesis, and developmental delay." — Goel et al., Neurosurgery 2024, PMID:37975663 [verbatim-verified]

"Hemimegalencephaly (HMG) is a developmental brain disorder characterized by an enlarged, malformed cerebral hemisphere, typically causing epilepsy that requires surgical resection." — Poduri et al., Neuron 2012, PMID:22500628 [verbatim-verified via raw efetch]

The MONDO definition (inherited from Orphanet) is the fullest single-sentence statement available:

"Hemimegalencephaly is a rare cerebral malformation characterized by overgrowth of all or part of a cerebral hemisphere, often with ipsilateral severe cortical dysplasia or dysgenesis, white matter hypertrophy and dilated lateral ventricle, presenting in early infancy with progressive hemiparesis, severe psychomotor retardation and intractable seizures." — MONDO:0020492 def, sourced to Orphanet:99802 [verbatim-verified from local sqlite:obo:mondo]

Key identifiers

Resource Identifier Notes
MONDO MONDO:0020492 label hemimegalencephaly; is_a MONDO:0100283 (overgrowth syndrome and/or cerebral malformations due to abnormalities in MTOR pathway genes) — this parent is a gift for dismech, it encodes the mechanism in the taxonomy
Orphanet ORPHA:99802 source of the MONDO definition; citable directly as ORPHA:99802 via the repo's structured-source cache
HPO (as a phenotype) HP:0007206 "Hemimegalencephaly", def. "Enlargement of all or parts of one cerebral hemisphere." is_a HP:0001355 Megalencephaly [verbatim-verified from local sqlite:obo:hp]
MeSH D065705
ICD-9 742.4
ICD-11 (foundation) 961229160 no distinct linearization stem code; usually coded under malformations of the brain
SNOMED CT 253170008
UMLS C0431391
MedGen 140910
GARD 0002637
NORD 1220
NCIt MONDO xrefs NCIT:C177779⚠️ this xref appears wrong. Querying sqlite:obo:ncit returns NCIT:C177779 = "MCAP Syndrome" (Megalencephaly-Capillary Malformation, is_a NCIT:C178285 PROS Syndrome), which is a different entity — a PIK3CA-related overgrowth syndrome, not hemimegalencephaly. Do not propagate this xref into a dismech mappings: block without re-checking against live NCIt; consider filing upstream.

Synonyms and alternative names

  • unilateral megalencephaly (EXACT, per Orphanet and ICD-11 foundation)
  • macrencephaly (RELATED, per GARD — imprecise, avoid)
  • HME, HMG, HMEG (literature abbreviations; note the older literature uses HMG, which now collides badly with the HMG-CoA gene family — prefer HME)
  • hemimegalencephaly variant of epidermal nevus syndrome (for the syndromic form)
  • Historical: "unilateral hemispheric dysplasia"; first described by Sims in 1835 (per D'Gama & Poduri, PMID:34608615 [verbatim-verified from full text in cache]: "Hemimegalencephaly (HME), first reported by Sims in 1835, is a rare MCD characterized by abnormal enlargement of a cerebral hemisphere")

Nature of the evidence base

Overwhelmingly aggregated, small-N, surgical-series derived. There is no HME registry. Nearly everything mechanistic comes from resected brain tissue obtained at hemispherectomy — a peculiar and important epistemic fact: HME is one of the very few brain malformations where the diseased organ is routinely removed and handed to a molecular biologist. The 2012 landmark paper says the quiet part out loud:

"The intractable epilepsy that is associated with HME can be relieved by the surgical treatment hemispherectomy, allowing sampling of diseased tissue." — Lee et al., Nat Genet 2012, PMID:22729223 [verbatim-verified from cache]

Consequence for curation: the entire genetic literature is ascertainment-biased toward severe, surgical HME. Mild or non-operated HME is essentially unsampled molecularly. Flag this as a knowledge gap.


2. Etiology

2.1 Primary cause — postzygotic somatic activation of PI3K–AKT–mTOR

HME is, in the modern framing, a mosaic mTORopathy. A single postzygotic mutation in a dorsal telencephalic progenitor cell, occurring after gastrulation (often after neurulation), constitutively switches on mTORC1 in that cell's entire clonal descent. That clone builds a hemisphere that is too big and wired wrong.

The three landmark 2012 papers established this in the same year:

(a) Poduri et al., Neuron 2012 (PMID:22500628) — copy-number and point-mutation evidence:

"We found that two out of eight HMG samples showed trisomy of chromosome 1q, which encompasses many genes, including AKT3, a gene known to regulate brain size. A third case showed a known activating mutation in AKT3 (c.49G→A, creating p.E17K) that was not present in the patient's blood cells." [verbatim-verified] "Our data suggest that somatic mutations limited to the brain could represent an important cause of complex neurogenetic disease." [verbatim-verified]

(b) Lee et al., Nat Genet 2012 (PMID:22729223) — exome sequencing of paired brain–blood:

"Exome sequencing and mass spectrometry analysis in paired brain-blood samples from individuals with HME (n = 20 cases) identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes. A recurrent PIK3CA c.1633G>A mutation was found in four separate cases. Identified mutations were present in 8-40% of sequenced alleles in various brain regions and were associated with increased neuronal S6 protein phosphorylation in the brains of affected individuals, indicating aberrant activation of mammalian target of rapamycin (mTOR) signaling. Thus HME is probably a genetically mosaic disease caused by gain of function in phosphatidylinositol 3-kinase (PI3K)-AKT3-mTOR signaling." [verbatim-verified from cache]

(c) Rivière et al., Nat Genet 2012 (PMID:22729224) — the sibling megalencephaly syndromes MCAP and MPPH, establishing AKT3/PIK3R2/PIK3CA as a germline-and-postzygotic continuum. [secondhand — RE-VERIFY]

Subsequent cohorts nailed down yield and the two-hit branch:

D'Gama et al., Ann Neurol 2015 (PMID:25599672) [verbatim-verified from raw efetch]:

"Using targeted and exome sequencing on DNA from resected brain samples and nonbrain samples from 53 patients with FCD or HME, we identified pathogenic germline and mosaic mutations in multiple PI3K/AKT pathway genes in 9 patients, and a likely pathogenic variant in 1 additional patient. Our data confirm the association of DEPDC5 with sporadic FCD but also implicate this gene for the first time in HME."

D'Gama et al., Cell Reports 2017 (PMID:29281825) — the "continuum" paper, and the single most useful mechanistic citation for a dismech pathograph [secondhand — RE-VERIFY, though quoted consistently across sources]:

"Deep sequencing of these genes in FCD/HME brain tissue identified an etiology in 27 of 66 cases (41%). Radiographically indistinguishable lesions are caused by somatic activating mutations in AKT3, MTOR, and PIK3CA and germline loss-of-function mutations in DEPDC5, NPRL2, and TSC1/2, including TSC2 mutations in isolated HME demonstrating a 'two-hit' model. Mutations in the same gene cause a disease continuum from FCD to HME to bilateral brain overgrowth, reflecting the progenitor cell and developmental time when the mutation occurred."

Baldassari et al., Acta Neuropathol 2019 (PMID:31444548) — the cleanest yield statistics and the sharpest genotype–histology split [verbatim-verified from raw efetch]:

"We were able to elucidate 29% of mMCD/FCD1 patients and 63% of FCD2/HME patients. Somatic loss-of-function variants in the N-glycosylation pathway-associated SLC35A2 gene were found in mMCD/FCD1 cases. Somatic gain-of-function variants in MTOR and its activators (AKT3, PIK3CA, RHEB), as well as germline, somatic and two-hit loss-of-function variants in its repressors (DEPDC5, TSC1, TSC2) were found exclusively in FCD2/HME cases." "Analysis of microdissected cells demonstrated that DNs and BCs carry the pathogenic variants. We further observed a correlation between the density of pathological cells and the variant-detection likelihood."

Macdonald-Laurs et al., Brain Commun 2025 (PMID:39926610) — most recent large integrated cohort (IESS-with-FMCD, n=59) [verbatim-verified from raw efetch]:

"A genetic diagnosis was achieved in 47 children (80% of cohort)." "Somatic mosaicism was a major cause of focal cortical dysplasia type II/hemimegalencephaly (81%) and mild malformation of cortical development with oligodendroglial hyperplasia (100%)."

2.2 Risk factors

Genetic risk factors. - Causal (see §4 for full detail): somatic gain-of-function in MTOR, PIK3CA, AKT3, AKT1, RHEB; loss-of-function (germline, somatic, or two-hit) in TSC1, TSC2, DEPDC5, NPRL2, NPRL3, PTEN. - Germline predisposition: a germline TSC1/TSC2 or GATOR1 (DEPDC5/NPRL2/NPRL3) variant creates a field of vulnerability — one somatic second hit anywhere in a telencephalic progenitor produces HME. This is the only setting in which HME carries a meaningful familial recurrence risk, and it matters enormously for counselling. - Susceptibility loci / GWAS: none. HME is not a complex-trait disease; there is no GWAS Catalog signal, and there should not be. - Modifier genes: not established. The candidate "modifier" is really variant allele fraction and clone geography, not a second gene (see §4).

Environmental risk factors. None established. No toxin, infection, maternal exposure, parity, or socioeconomic factor is reproducibly associated. The mutational events are the spontaneous-replication-error kind, not the exposure-driven kind. Two nuances worth curating as negative or unresolved: - Advanced paternal age is a known driver of germline de novo mutation but has not been shown to drive postzygotic somatic mutation in HME. - Crino (PMID:26060899, [verbatim-verified from full text in cache]) raises a viral hypothesis for FCD II, not HME, and is explicitly agnostic: "Alternatively, human papilloma virus may have no pathogenic role in FCD." Do not import this into HME as a risk factor.

Sex. No consistent sex bias reported. Laterality: a left-sided predominance was reported in the 2025 single-centre Seizure series (n=14) [secondhand — RE-VERIFY, PMID:41033188], but this is not a robust finding across series and should not be curated as a frequency-bearing claim.

2.3 Protective factors

None known, genetic or environmental — as expected for a somatic-mutation disease of embryogenesis. There is no meaningful "protection" concept here; the closest analogue is early surgical intervention as secondary prevention of epileptic encephalopathy (§13).

2.4 Gene–environment interactions

Not applicable / none demonstrated. The only genuine "interaction" in HME is genetic × developmental-timing: the same mutation produces FCD, HME, or bilateral megalencephaly depending on when in corticogenesis and in which progenitor pool it arises (D'Gama 2017). That is a gene × developmental-clock interaction, not a gene × environment one, and it is the single most important structural insight to encode in the pathograph.


3. Phenotypes

Frequency bands below follow the HPO FrequencyEnum convention. Caution for curation: most HME literature is small surgical series; frequency figures reported here that lack a quantitative denominator should be curated without a frequency: value rather than with a fabricated band (per docs/frequency-evidence-guidelines.md).

3.1 Core neurological phenotypes

Phenotype Suggested HP term Onset Severity Course Frequency Evidence
Hemimegalencephaly (the structural lesion itself) HP:0007206 Hemimegalencephaly congenital / antenatal static substrate Obligate (definitional) MONDO:0020492 def; PMID:37975663
Drug-resistant epilepsy HP:0001250 Seizure (+ specify drug-resistance) neonatal to <6 mo, frequently day 1 of life severe intractable, multiple daily seizures Very frequent → obligate ("virtually all") PMID:34608615; PMID:41033188
Epileptic (infantile) spasms HP:0011097 Epileptic spasm 3–12 mo severe often evolves from focal seizures Frequent PMID:39926610 (whole cohort is IESS+FMCD); TAE series PMID:42208165
Focal impaired-awareness seizures with motor features HP:0002384 Focal impaired awareness seizure neonatal severe Very frequent (75% in one TAE series) PMID:42208165 [secondhand]
Epilepsia partialis continua HP:0012847 Epilepsia partialis continua infancy–childhood severe continuous Occasional — and a negative prognostic marker PMID:37873610
Contralateral hemiparesis / spastic hemiplegia HP:0002301 Hemiplegia (or HP:0001269 Hemiparesis) infancy moderate–severe non-progressive but functionally worsens with growth Very frequent PMID:37975663; MONDO def ("progressive hemiparesis")
Contralateral homonymous hemianopia HP:0000580 Hemianopia (verify subtype term) infancy (often detected late) static Frequent PMID:34608615 ("contralateral hemiparesis and hemianopia are commonly reported") [verbatim-verified from cache]
Global developmental delay HP:0001263 Global developmental delay infancy severe plateau or regression Very frequent PMID:37975663
Intellectual disability HP:0001249 Intellectual disability childhood typically severe static/plateau Very frequent PMID:28377884
Developmental regression (epileptic encephalopathy) HP:0002376 Developmental regression infancy, with seizure onset severe Frequent PMID:34608615
Absent or severely limited speech HP:0001344 Absent speech childhood severe Frequent Puka 2021, PMID:34608636
Macrocephaly / cranial asymmetry HP:0000256 Macrocephaly congenital–infancy mild–moderate Frequent (not universal — a big hemisphere does not always give a big head) MONDO def; Orphanet
Ventriculomegaly / colpocephaly (ipsilateral) HP:0002119 Ventriculomegaly congenital static Very frequent MONDO def; imaging literature
Abnormality of neuronal migration HP:0002269 Abnormality of neuronal migration prenatal static Very frequent PMID:36325654
Corpus callosum dysgenesis HP:0007370 Aplasia/Hypoplasia of the corpus callosum prenatal variable static Occasional–frequent imaging literature

3.2 Systemic / syndromic phenotypes (in syndromic HME only)

  • Epidermal nevus / linear sebaceous nevus (HP:0001051 or a more specific nevus term) — epidermal nevus syndrome is the classic HME-associated neurocutaneous disorder; one review identified 57 previously reported ENS+HME cases in which "the most frequent associated features were severe epilepsy, in about half of cases with neonatal onset, mental retardation/developmental delay, ocular/visual involvement, and facial abnormalities" [secondhand — RE-VERIFY]
  • Hypopigmented streaks along Blaschko lines (hypomelanosis of Ito) — HP:0001010/HP:0011358; note MTOR-related hypomelanosis of Ito is now molecularly linked to HME
  • Capillary/vascular malformation, hemihypertrophy (Klippel-Trénaunay / MCAP overlap) — HP:0001028, HP:0001528 Hemihypertrophy
  • Facial infiltrating lipomatosis with contralateral HME — a recognized (and mechanistically informative: PIK3CA-driven) association, PMID:39454530
  • TSC stigmata in TSC-associated HME (cardiac rhabdomyoma, hypomelanotic macules, renal angiomyolipoma) — PMID:33387903, PMID:26231267, PMID:35022853
  • Hemihypertrophy of the ipsilateral body — reported; note laterality: body hypertrophy is typically ipsilateral to the big hemisphere

3.3 Electrophysiological phenotype (a phenotype in its own right for HME)

  • Hemihypsarrhythmia — the near-pathognomonic infantile EEG signature: asymmetric, lateralized hypsarrhythmia
  • Unilateral suppression-burst, especially in sleep
  • Depressed background voltage over the involved hemisphere with bursts of numerous spikes in wakefulness [secondhand — RE-VERIFY]
  • Suggested term: HP:0011182 Interictal epileptiform activity (HPO lacks a hemihypsarrhythmia term — a genuine ontology gap worth noting)
  • Bilateral ictal EEG abnormality is the single strongest adverse surgical predictor (§11)

3.4 Quality-of-life impact

Per-phenotype QoL data are thin. What exists: - Post-hemispherectomy QoL "depends not only on seizure outcome but also on developmental and functional outcomes, such as motor and language impairments," and HME as a substrate "is associated with worse motor and language outcomes" [secondhand — RE-VERIFY] - Caregiver burden did not improve after surgery in at least one series, attributed to the chronic nature of the condition [secondhand — RE-VERIFY] — a striking and curation-worthy dissociation: seizures improve, family burden does not. - No EQ-5D, SF-36, PROMIS, or HME-specific PRO instrument data exist. This is a real gap.


4. Genetic / Molecular Information

4.1 Causal genes

All converge on mTORC1 hyperactivation. Two arms:

Arm A — somatic GAIN-of-function in mTOR pathway activators (the dominant mechanism in HME, "single-hit"):

Gene HGNC Canonical HME variants Consequence Key PMIDs
MTOR hgnc:3942 p.Cys1483Tyr, p.Ser2215Phe/Tyr, p.Leu2427Pro/Gln, p.Ala1459Pro GOF — constitutive kinase activity 22729223; 31444548; 30514132
PIK3CA hgnc:8975 c.1633G>A p.Glu545Lys (recurrent, 4/20 in Lee 2012); p.His1047Arg/Leu; p.Glu542Lys GOF — catalytic p110α 22729223; 25722288; 36325654
AKT3 hgnc:393 c.49G>A p.Glu17Lys; also mosaic trisomy 1q encompassing the AKT3 locus GOF — PH-domain lock to membrane 22500628; 22729223
AKT1 hgnc:391 p.Glu17Lys (Proteus-type) GOF 36325654 (fetal HME case)
RHEB hgnc:10011 p.Tyr35Leu/Asn GOF — constitutive mTORC1 activator 31444548; 34608615
PIK3R2 hgnc:8980 p.Gly373Arg GOF (loss of p85β inhibition of p110) — chiefly MPPH, HME-adjacent 22729224

Arm B — LOSS-of-function in mTOR repressors (germline, somatic, or classic two-hit):

Gene HGNC Mechanism in HME Key PMIDs
TSC2 hgnc:12363 two-hit (germline + somatic second hit) in isolated HME; also TSC-associated HME 29281825; 31444548; 33387903
TSC1 hgnc:12362 as above 31444548; 35022853
DEPDC5 hgnc:18423 GATOR1 LOF; first implicated in HME by D'Gama 2015 25599672; 31444548
NPRL2 hgnc:24969 GATOR1 LOF 29281825
NPRL3 hgnc:20558 GATOR1 LOF; reported in neonatal HME with intractable seizures 33749980
PTEN hgnc:9588 LOF; a 2026 fetal case showed biallelic PTEN alteration in affected tissue, hemisphere-restricted 25722288; PMID:42024976

The 2026 PTEN fetal report is worth quoting for the mechanism it rules out [secondhand — RE-VERIFY, PMID:42024976]: hemispheric overgrowth caused by "biallelic PTEN alteration in affected brain tissue, while the unaffected hemisphere carried only heterozygous variant," with outer-subventricular-zone nodular heterotopias composed exclusively of "SATB2+ glutamatergic projection neurons," and the conclusion that "the PTEN mutation is not a dominant-negative variant."

4.2 Variant characteristics

  • Origin: predominantly somatic / postzygotic, brain-restricted. D'Gama & Poduri (PMID:34608615, [verbatim-verified from cache]): "In general, when blood samples are available, the somatic mosaic variants identified in brain tissue are not detected in blood, suggesting that the mutational events that result in these variants arise relatively late in embryonic development, after gastrulation or in some cases after neurulation."
  • Variant allele fraction (VAF): the defining quantitative feature. Lee 2012: "present in 8-40% of sequenced alleles in various brain regions." D'Gama & Poduri: "The alternate allele frequency (AAF) of detected somatic mutations in FCD and HME ranges from approximately 1 to 30%… The average AAF for variants associated with FCD is lower than the average AAF for variants associated with HME; while there is some overlap, there appears to be a relationship between the allele frequency and the severity of the phenotype." [verbatim-verified from cache]VAF is effectively the dose-response variable of this disease.
  • Variant class: almost entirely missense in the activator arm (recurrent hotspot residues, largely shared with the cancer somatic-mutation catalogue); truncating/frameshift/splice + LOH in the repressor arm; plus somatic copy-number gain (mosaic trisomy 1q → AKT3).
  • Allele frequency in population databases: absent from gnomAD as constitutional variants (they are embryonic-lethal or syndromic in germline form; the PIK3CA and AKT hotspots are COSMIC-catalogued oncogenic drivers instead). For KB purposes: gnomAD frequency is not applicable — do not curate a "0.00" as if it were a measured population frequency.
  • ACMG classification: the recurrent activators (PIK3CA E545K, AKT3 E17K, MTOR S2215F) are Pathogenic; the framework strains at somatic mosaic variants, and ACMG/AMP germline rules apply awkwardly. Note this as a methodological caveat.
  • Cell-of-origin: dysmorphic neurons and balloon cells carry the variant — Baldassari 2019, "Analysis of microdissected cells demonstrated that DNs and BCs carry the pathogenic variants." [verbatim-verified]

4.3 Modifier genes

None established. The functional "modifier" is mutation timing + clone size + cell lineage, per D'Gama 2017.

4.4 Epigenetics

No disease-defining methylation or chromatin signature has been established for HME. One methodologically relevant use of epigenomics: whole-genome bisulfite sequencing of CSF cell-free DNA was used alongside ddPCR to assign brain origin to mosaic variants (PMID:33738444) — epigenomics as a tissue-of-origin tracer, not as a disease mechanism. Curate accordingly.

4.5 Chromosomal abnormalities

Mosaic trisomy 1q (encompassing AKT3 at 1q43-q44) in 2/8 HME samples — Poduri 2012, "the estimated copy number for 1q in one patient (HMG-1) was 2.41 (SD 0.12), consistent with mosaic trisomy 1q" [secondhand — RE-VERIFY]. This is the reason chromosomal microarray on brain tissue (not blood) retains a role. Otherwise: no recurrent karyotypic abnormality; blood karyotype and blood CMA are normal in isolated HME.


5. Environmental Information

  • Environmental factors: none established. No CTD-catalogued chemical association. Nothing in TOXNET/EPA that survives scrutiny.
  • Lifestyle factors: not applicable — a prenatal somatic-mutation disease.
  • Infectious agents: not applicable for HME. Congenital CMV can produce cortical malformation (pachygyria, polymicrogyria) and belongs in the differential, not the etiology. The HPV/CMV/HHV-6 literature in FCD II (discussed by Crino, PMID:26060899) has not been extended to HME and remains contested even for FCD.

6. Mechanism / Pathophysiology

6.1 The causal chain (proposed dismech pathograph)

This is the spine of the entry. Each arrow is a curatable downstream edge.

[1] Postzygotic somatic mutation in a dorsal telencephalic progenitor
    (GOF: MTOR/PIK3CA/AKT3/AKT1/RHEB  |  LOF ± 2nd hit: TSC1/TSC2/DEPDC5/NPRL2/NPRL3/PTEN)
    biological_scale: MOLECULAR
↓
[2] Constitutive mTORC1 activation in the mutant clone
    (readout: phospho-S6 Ser240/244, phospho-p70S6K, phospho-4E-BP1)
    biological_scale: MOLECULAR
↓
[3] Unrestrained cap-dependent translation, ribosome biogenesis, and cell growth;
    suppressed autophagy
    biological_scale: CELLULAR
↓  ↓  ↓  (three parallel consequences)
[4a] Progenitor over-proliferation / failed apoptosis → clonal hemispheric overgrowth
[4b] Cytomegaly → dysmorphic (cytomegalic) neurons and balloon cells
[4c] Impaired radial migration and lineage specification → cortical dyslamination,
     polymicrogyria, subcortical/periventricular/subarachnoid heterotopia
    biological_scale: CELLULAR / TISSUE
↓
[5] Hemispheric megalencephaly with severe cortical dysplasia, white matter
    hypertrophy with abnormal myelination, and ipsilateral ventriculomegaly
    biological_scale: TISSUE
↓
[6] Excitation–inhibition imbalance and intrinsic hyperexcitability of dysmorphic
    neurons (reduced GABA_A subunit expression, fewer GABAergic interneurons,
    altered glutamate receptor composition)
    biological_scale: CELLULAR   ← conforms_to: epilepsy_excitation_inhibition_imbalance
↓
[7] Hemispheric ictogenesis and epileptogenesis (hemihypsarrhythmia, suppression-burst,
    epilepsia partialis continua)
    biological_scale: ORGANISM
↓
[8] Epileptic encephalopathy: seizure burden + malformed network → arrest and
    regression of development, contralateral hemiparesis/hemianopia from the
    structurally deficient hemisphere
    biological_scale: ORGANISM
↓
[9] Secondary contralateral dysfunction ("the good hemisphere is not innocent"):
    contralateral hemimicrencephaly in some cases; uncrossed cerebellar diaschisis
    biological_scale: ORGANISM

Key branch to encode: step [1] has two mechanistically opposite entry routes (activator GOF vs. repressor LOF) that converge on the identical node [2]. This is a textbook convergent-node structure and belongs in the pathograph explicitly.

Key modulating variable: the timing of [1] determines whether you get FCD (late, small clone), HME (earlier, hemisphere-sized clone), or bilateral megalencephaly (earliest). Curate this as a mechanistic_hypotheses/annotation rather than as three separate diseases.

6.2 Molecular pathways

  • PI3K–AKT–mTORC1 — the whole story. GO: GO:0031929 TOR signaling; GO:0032008 positive regulation of TOR signaling; GO:0038202 TORC1 signaling; GO:0032006 regulation of TOR signaling; GO:0043491 phosphatidylinositol 3-kinase/protein kinase B signal transduction (note: GO:0014065 "phosphatidylinositol 3-kinase signaling" is OBSOLETE — do not use).
  • Two upstream sensing arms converge on mTORC1 and are not interchangeable — D'Gama & Poduri, [verbatim-verified from cache]: "activation of the energy-sensing pathway (PI3K-PTEN-AKT-TSC-RHEB) versus the amino-acid sensing pathway (GATOR-RAG) that converge on mTOR shows some differences in in vitro studies and animal models, suggesting that the effects of a given activating mTOR pathway mutation will depend on both general hyperactivation of the mTOR pathway and potentially specific effects of the mutated protein." This is a genuine, curatable nuance: DEPDC5-HME and PIK3CA-HME are not the same disease at the molecular level, even though both are "mTOR."
  • KEGG hsa04150 (mTOR signaling pathway); Reactome R-HSA-165159 (mTOR signalling), R-HSA-1257604 (PIP3 activates AKT signaling).

6.3 Cellular processes

  • Cell growth GO:0016049 — INCREASED (the cytomegaly node)
  • Cell population proliferation GO:0008283 — INCREASED (progenitor over-proliferation)
  • Neuron migration GO:0001764 — DECREASED/ABERRANT
  • Cell motility involved in cerebral cortex radial glia guided migration GO:0021814 — DECREASED
  • Cerebral cortex development GO:0021987 / brain development GO:0007420 — ABNORMAL
  • Translation GO:0006412 — INCREASED
  • Autophagy GO:0006914 — DECREASED (mTORC1 suppresses it; note Crino's observation of autophagic vacuoles and p62 in FCD IIb/TSC, i.e. blocked flux)
  • Regulation of cell differentiation GO:0045595 — ABNORMAL (balloon cells express progenitor markers SOX2, nestin, vimentin, c-myc — "suggesting a failure to differentiate before migration into the cortex," Crino PMID:26060899 [verbatim-verified from cache])
  • Neuronal ciliogenesis — a mechanistically distinct downstream effect of MTOR somatic variants leading to dyslamination (Park et al., Neuron 2018); worth an EMERGING hypothesis node.

6.4 Protein dysfunction

  • AKT3 p.E17K: PH-domain charge reversal → pathological plasma-membrane recruitment independent of PIP3 → constitutive activation. Exactly paralogous to the AKT1/AKT2 E17K substitutions in somatic overgrowth syndromes (Poduri 2012).
  • PIK3CA p.E545K (helical domain): abolishes p85 inhibitory contact → constitutive p110α lipid-kinase activity. p.H1047R (kinase domain): membrane-binding/conformational activation. Both are canonical COSMIC oncogenic hotspots — the same lesions, in a different tissue and a different developmental window, that drive carcinoma. HME is, in a real sense, oncogenic signalling without oncogenesis: the clone grows and differentiates badly but does not become malignant.
  • MTOR kinase-domain substitutions (S2215F/Y, L2427P): relieve autoinhibition.
  • TSC1/TSC2/TBC1D7 complex LOF: loss of GAP activity toward RHEB → RHEB stays GTP-bound → mTORC1 on.
  • GATOR1 (DEPDC5/NPRL2/NPRL3) LOF: loss of GAP activity toward RAG GTPases → amino-acid-independent mTORC1 activation.
  • PTEN LOF: PIP3 not dephosphorylated → sustained AKT activation.
  • UniProt anchors: P42345 MTOR, P42336 PIK3CA, Q9Y243 AKT3, P31749 AKT1, Q92974→ use Q15382 RHEB, Q92574 TSC1, P49815 TSC2, O60484 DEPDC5, P60484 PTEN.

6.5 Metabolic changes

mTORC1 is a master anabolic switch, so the mutant clone shows increased glycolytic and lipogenic flux, increased nucleotide and protein synthesis. Direct human HME metabolomics is essentially absent. One indirect clinical observation is mechanistically suggestive: the ketogenic diet reduces phospho-S6 and phospho-Akt in fed rats, "suggesting inhibition of the mTOR pathway, potentially due to an amino acid deprivation-like environment" (Crino/D'Gama & Poduri, PMID:34608615 [verbatim-verified from cache]) — i.e. a dietary intervention acting on the same node as the targeted drug.

6.6 Immune system involvement

Not primary. Innate and adaptive immune activation is described in FCD II tissue and may be reactive/secondary to seizures. Do not curate HME as an immune-mediated disease. The clinically relevant immune issue is iatrogenic: mTOR inhibitors are immunosuppressants (stomatitis, recurrent URIs, pneumonitis).

6.7 Tissue damage mechanisms

There is no primary degeneration or necrosis. The "damage" is maldevelopment plus seizure-driven network injury, with two secondary threads worth noting: - Neurodegeneration-adjacent changes: "abnormal activation of mTOR may contribute to apoptosis signaling pathways and premature activation of neurodegeneration cascades," including hyperphosphorylated tau in pS6-positive dysmorphic neurons (Crino, [verbatim-verified from cache]). - Uncrossed cerebellar diaschisis — remote functional deafferentation demonstrated by FDG-PET and DTI tractography (PMID:40344425), a nice illustration that the lesion's footprint exceeds its anatomy.

6.8 Biochemical abnormalities

  • The diagnostic biochemical readout is phospho-S6 ribosomal protein (Ser240/244 or Ser235/236) immunoreactivity in dysmorphic neurons and balloon cells. Itoh 2023, [secondhand — RE-VERIFY, PMID:36325654]: "Scattered cell nests immunoreactive for phosphorylated-S6 ribosomal protein (P-RPS6) (Ser240/244) were observed in the polymicrogyria-like cortical plate, intermediate zone, and arachnoid space, suggesting that the PI3K-AKT-MTOR pathway was actually activated in these cells."
  • Jansen 2015 (PMID:25722288) found "elevated levels of phosphorylated S6 ribosomal protein were identified in both neurons and astrocytes" [secondhand — RE-VERIFY] — note the glial component.
  • Baldassari 2019 [verbatim-verified]: "panel-negative FCD2 cases display strong pS6-immunostaining, stressing that all FCD2 are mTORopathies." The pathway is on even when sequencing fails to find the culprit.
  • Ion channels / receptors: reduced GABA_A receptor subunit expression, fewer GABAergic interneurons, altered glutamate receptor subunit composition; a specific mechanism reported for MTOR-FCD is hyperexcitability "via overactivation of neuronal GluN2C NMDA receptors" (preprint-stage; do not curate as established).

6.9 Molecular profiling

  • Single-cell: D'Gama 2017 — "Single-cell sequencing demonstrated mTOR activation in neurons in all lesions" [secondhand — RE-VERIFY]; Baldassari 2019 microdissection assigned variants to DNs and BCs and found "a somatic second-hit loss-of-heterozygosity in a DEPDC5 germline case" [verbatim-verified].
  • Lineage restriction — the sharpest single mechanistic claim in the literature: D'Gama 2017 — "Conditional Pik3ca activation in the mouse cortex showed that mTOR activation in excitatory neurons and glia, but not interneurons, is sufficient for abnormal cortical overgrowth." [secondhand — RE-VERIFY, and worth the effort: this is the cell-type-specificity claim.]
  • Recent contradicting/complicating datum: Gelot et al., Epilepsia 2025 (PMID:39973610) report cytomegalic parvalbumin neurons in fetal HME — i.e. inhibitory interneurons are morphologically involved in human fetal tissue, even if mouse interneuron-restricted activation isn't sufficient. Curate this as a HUMAN_MODEL_MISMATCH discussion: mouse says interneurons don't matter for overgrowth; human fetal pathology says interneurons are visibly affected. (I could not obtain this abstract verbatim — RE-VERIFY before use.)
  • Transcriptomics / proteomics / metabolomics / lipidomics: no dedicated HME datasets of note in GEO/PRIDE/MetaboLights. This is a genuine, statable gap.
  • Functional genomics screens: none HME-specific.

6.10 Cell types (CL) and anatomy — mechanism-relevant

Cell type CL term Role
radial glial cell CL:0000681 the mutated progenitor; clone founder
neural progenitor cell CL:0011020 over-proliferating compartment
glutamatergic neuron CL:0000679 the lineage in which mTOR activation is necessary/sufficient
pyramidal neuron CL:0000598 substrate of the cytomegalic/dysmorphic neuron
astrocyte CL:0000127 pS6-positive; contributes to overgrowth
oligodendrocyte CL:0000128 white-matter hypertrophy/dysmyelination
GABAergic neuron CL:0000617 E/I imbalance; cytomegalic PV neurons in fetal HME

Ontology gap to note: Cell Ontology has no term for "balloon cell" or "dysmorphic (cytomegalic) neuron" — the two cells that literally define this disease's histology. Use preferred_term: balloon cell over the nearest CL parent and flag the gap.


7. Anatomical Structures Affected

Organ level

  • Primary: one cerebral hemisphereUBERON:0001869 cerebral hemisphere; cerebral cortex UBERON:0000956
  • Secondary: ipsilateral white matter UBERON:0002316 (hypertrophic, abnormally myelinated); ipsilateral lateral/telencephalic ventricle UBERON:0002285 (enlarged, with the characteristic straightened frontal horn pointing antero-superiorly); corpus callosum UBERON:0002336 (dysgenetic); basal ganglia UBERON:0002420 (often enlarged ipsilaterally); hippocampal formation UBERON:0002421
  • "Total" HME: ipsilateral cerebellum UBERON:0002037 and brainstem UBERON:0002298 hypertrophy — the Flores-Sarnat "total hemimegalencephaly" variant (Flores-Sarnat L, J Child Neurol 2002;17:373–84 Part 1; 2003;18:776–85 Part 2 — PMIDs not independently verified in this session; verify before citing)
  • Contralateral hemisphere: not normal in a meaningful fraction — contralateral hemimicrencephaly and abnormalities "occurring outside the involved hemisphere" are described (AJNR 2007), and contralateral EEG abnormality is the dominant negative surgical predictor
  • Body systems: nervous system, primarily; integumentary/vascular/skeletal in syndromic forms

Tissue and cell level

Neural tissue: cortical grey matter (dyslaminated, thickened), subcortical and periventricular white matter (heterotopic neurons, gliosis, abnormal myelin), leptomeninges (subarachnoid heterotopia in fetal cases). Cell populations as in §6.10.

Subcellular level (GO CC)

  • GO:0031931 TORC1 complex — the locus of the lesion
  • GO:0005886 plasma membrane — where AKT3 E17K wrongly parks
  • GO:0005829 cytosol — PI3K/AKT signalling
  • GO:0022626 cytosolic ribosome / GO:0005840 ribosome — the S6 readout
  • GO:0005764 lysosome — the mTORC1 docking platform (Rag/Ragulator); the GATOR arm acts here
  • GO:0005929 cilium — implicated in the MTOR-ciliogenesis dyslamination mechanism

Localization and lateralization

  • Unilateral by definition. HP:0012837 Unilateral (as a modifier). Left-sided predominance reported in at least one recent series but not robustly established.
  • Distribution within the hemisphere may be complete (whole hemisphere) or partial/lobar — partial forms shade into hemispheric cortical dysplasia and the FCD end of the continuum, which is a boundary curators will have to draw deliberately.

8. Temporal Development

Onset

  • The mutation: prenatal, postzygotic, after gastrulation/neurulation; the lesion is built between roughly gestational weeks 5–20 (cortical tubers, the closest-studied analogue, are detectable from ~20 weeks; Crino: "indicating that tubers (and by extension, focal cortical dysplasias) form during embryonic brain development, probably between weeks 10 and 20 of human gestation" [verbatim-verified from cache])
  • The lesion: detectable prenatally on fetal MRI and even transabdominal/transvaginal ultrasound (PMID:38617140); a notable report describes evolution "from an atypical focal early appearance on fetal MRI to more conventional MR findings" — i.e. the fetal appearance can be misleadingly focal early on
  • Seizures: neonatal to <6 months, very often within days of birth. The 2026 Epilepsia infant surgical series reports "Median seizure onset occurred at 3 days of life" [secondhand — RE-VERIFY, PMID:42132620]; the 2026 TAE series "Mean seizure onset occurred at 9 days old" [secondhand — RE-VERIFY, PMID:42208165]; the 2025 Seizure series reports onset "within the first day of life" [secondhand — RE-VERIFY, PMID:41033188]
  • Onset pattern: congenital structural lesion; acute-to-catastrophic epilepsy onset superimposed on it

Progression

  • The malformation is static. The epilepsy and its consequences are not.
  • Typical trajectory: neonatal focal seizures → status-epilepticus-prone, multiple daily seizures → often evolution to epileptic spasms / IESS at 3–12 months → hemihypsarrhythmia → developmental arrest or regression → in survivors, a chronic multi-seizure-type drug-resistant epilepsy
  • Epileptogenic zone can expand: "the epileptogenic area may increase with poor seizure control" [secondhand — RE-VERIFY] — the mechanistic justification for early surgery
  • Duration: chronic, lifelong. No spontaneous remission.
  • Adult data are scant and unpromising: "Few patients with HME have been followed into adulthood. Reported adult cases have milder epilepsy or underwent hemispherectomy in childhood. Patients surviving to adulthood have poor outcomes, regardless of treatment method, although seizure burden is improved with hemispherectomy." (PMID:28377884) [secondhand — RE-VERIFY]

Critical periods

Two, and they pull against each other — this is the central clinical tension of HME: 1. The neurodevelopmental window (first ~6–12 months): uncontrolled seizures during peak synaptogenesis cause the encephalopathy. Argues for operating as early as possible. 2. The surgical-safety window: hemispherectomy in neonates and very small infants carries high blood-loss and mortality risk. "With neonates and young infants, hemispherectomy has a very high mortality and complication rate, resulting in most neurosurgeons deferring treatment until at least 8 weeks" [secondhand — RE-VERIFY]. Argues for waiting for weight gain.

Everything interesting in current HME therapeutics — mTOR inhibitors as a bridge, staged transarterial embolization — is an attempt to buy time between these two windows.


9. Inheritance and Population

Epidemiology

  • Prevalence: genuinely unknown at the population level. NORD states prevalence estimates are not available. The most-cited figure is denominator-shifted: 1–3 per 1,000 children with epilepsy [secondhand — RE-VERIFY] — note carefully that this is not a population prevalence and must not be curated as one. For a dismech Prevalence record: measure_type: UNKNOWN or a qualitative prevalence_class: ULTRA_RARE, with the epilepsy-denominator figure in notes.
  • Incidence: no reliable estimate.
  • Surgical-series representation (the only well-quantified denominators, and heavily biased):
  • HME was 58% of seizure etiologies among infants undergoing hemispherectomy/hemispherotomy [secondhand — RE-VERIFY]
  • HME made up 42.6% of anatomic hemispherectomy cases vs 14.1% of functional hemispherectomy cases [secondhand — RE-VERIFY]
  • In one 35-year single-institution hemispherectomy series, HME was the third commonest etiology (n=25) after MCD (n=39) and stroke (n=30) [secondhand — RE-VERIFY]

Inheritance

  • Sporadic / non-Mendelian in the overwhelming majority. The causal event is a postzygotic somatic mutation, so HME has no inheritance pattern in the classical sense. HPO: no standard mode-of-inheritance term applies cleanly — the honest annotation is HP:0001470? no — use HP:0001426 Multifactorial inheritance? Also no. The correct handling is to omit a mode-of-inheritance term for isolated HME and record "somatic mosaicism, non-heritable" in the description, or use HP:0003745 Genetic anticipation-adjacent terms — do not force-fit. HPO's HP:0001470-family lacks a "somatic mosaicism" mode; this is a real ontology gap for mosaic diseases and worth flagging.
  • Exception — the two-hit / germline-predisposition subset: where a germline TSC1/TSC2 or GATOR1 (DEPDC5/NPRL2/NPRL3) LOF variant is the first hit, the predisposition is autosomal dominant (HP:0000006), with the HME lesion itself requiring a somatic second hit. This subset carries a 50% transmission risk for the predisposing allele — and must be identified, because the counselling is completely different.
  • Penetrance: the germline predisposing allele is incompletely penetrant for HME specifically (most TSC patients never develop HME — PMID:33387903 calls the association "uncommon and has so far been reported only in a few cases"). The somatic second hit is essentially fully penetrant locally.
  • Expressivity: highly variable, and the variability maps onto VAF and clone geography rather than onto a modifier locus.
  • Genetic anticipation: not applicable (no repeat expansion).
  • Germline mosaicism: theoretically possible if the mutation arose very early (pre-primordial-germ-cell segregation), which would produce both somatic and gonadal mosaicism. Not documented in HME. Recurrence risk for isolated HME is generally counselled as near-baseline but not formally zero.
  • Founder effects / carrier frequency / consanguinity: not applicable.

Population demographics

  • Ethnic/geographic: no established variation. Cases reported worldwide (US, Europe, Japan, Korea, China, Turkey, India, Latin America). Apparent geographic clustering in the literature reflects where paediatric epilepsy surgery programmes exist, not disease biology — an important curation caveat.
  • Sex ratio: approximately 1:1; no established bias.
  • Age distribution: overwhelmingly infants and children, because ascertainment is via early catastrophic epilepsy and because unoperated survival into adulthood is uncommon and under-reported.

10. Diagnostics

Imaging — the primary diagnostic modality

Brain MRI is the diagnostic test. Characteristic features: - Enlargement of all or part of one hemisphere with midline shift - Thickened, dysplastic cortex with abnormal gyration (agyria, pachygyria, polymicrogyria) and blurred grey–white junction - Abnormal white matter signal — T2/FLAIR hyperintensity, hypertrophic white matter, often with a transmantle-like tapering to the ventricle - Ipsilateral lateral ventricle enlarged and dysmorphic, with the classic straightened frontal horn pointing antero-superiorly — near-signature - Grey-matter heterotopia (subcortical, periventricular) - Ipsilateral basal ganglia enlargement, corpus callosum dysgenesis, ± ipsilateral cerebellar hypertrophy (total HME) - Fetal MRI and prenatal ultrasound can make the diagnosis antenatally (PMID:38617140; the "in utero MRI" literature) — with the caveat that the early fetal appearance may be deceptively focal - FDG-PET: regional hypometabolism; also reveals uncrossed cerebellar diaschisis (PMID:40344425) - RadLex/DICOM: standard paediatric brain MRI protocol; add DTI for tractography and presurgical mapping

Electrophysiology

  • EEG / video-EEG is mandatory and is both diagnostic and prognostic. Look for: lateralized background suppression with high-voltage spike bursts; hemihypsarrhythmia; unilateral suppression-burst, especially in sleep; epilepsia partialis continua.
  • The single most important EEG finding for prognosis is whether the abnormality is confined to the affected hemisphere. Bilateral ictal EEG abnormality was the only independent predictor of faster seizure recurrence after hemispherectomy (HR = 11.5; P = .002 — PMID:37975663 [verbatim-verified from cache]).
  • LOINC: standard EEG codes (e.g. 24708-8 EEG study); no HME-specific code.

Histopathology (on resected tissue)

  • Cortical dyslamination, polymicrogyria, heterotopia (subarachnoid, subcortical, subventricular), immature neurons, calcifications
  • Dysmorphic (cytomegalic) neurons and balloon cells — histologically indistinguishable from FCD IIb and from TSC giant cells
  • Immunohistochemistry: phospho-S6 (Ser240/244 or Ser235/236) is the workhorse. Positive labelling in DNs and BCs establishes mTOR pathway activation even when sequencing is negative.
  • Mixed/ambiguous lineage markers on balloon cells (SOX2, nestin, vimentin, c-myc; Pax6, ER81, Otx1) — the "failed to differentiate" signature
  • Recent addition: cytomegalic parvalbumin (inhibitory) neurons in fetal HME (PMID:39973610)
  • Note: HME is not currently accommodated in the ILAE FCD classification — Crino, [verbatim-verified from cache]: "Other types of focal MCD, such as TSC, hemimegalencephaly, and some of the newer focal cortical dysplasia syndromes have not yet been subsumed into the ILAE classification."

Genetic testing — the crucial methodological point

Blood-based testing is expected to be negative in isolated HME. This is the diagnostic trap. The variant lives in the brain.

Recommended approach: 1. Deep targeted panel sequencing (≥500×, ideally ≥2000×) of DNA from resected brain tissue, paired with blood — the reference standard (Baldassari 2019 used "≥ 2000X read depth" on "matched blood-brain samples to search for low-allele frequency variants"). Panel content: MTOR, PIK3CA, AKT1, AKT3, RHEB, PIK3R2, TSC1, TSC2, DEPDC5, NPRL2, NPRL3, PTEN, plus SLC35A2 (for the mMCD/MOGHE differential). 2. Germline WES/WGS on blood — to catch the two-hit predisposition arm (TSC1/TSC2/GATOR1), which is blood-detectable and is actionable for the family. 3. Chromosomal microarray on brain tissue — for mosaic 1q gain (AKT3). 4. Microdissection / single-cell enrichment of DNs and BCs raises yield when bulk VAF is low (Baldassari 2019). 5. Emerging non-surgical routes: - CSF cell-free DNA liquid biopsy — PMID:33738444, "cerebrospinal fluid liquid biopsy is valuable in investigating mosaic neurological disorders where brain tissue is unavailable" [secondhand — RE-VERIFY]; sensitivity is modest (3/12 known-positive cases in one ddPCR series) so a negative does not exclude. - Trace DNA from stereo-EEG depth electrodes — a 2024 report identified a mosaic MTOR variant in purified neuronal DNA from depth electrodes (preprint/medRxiv at time of writing — do not curate as established). 6. Karyotype, FISH, mtDNA testing, repeat-expansion testing: not indicated.

Laboratory tests / biomarkers

No blood or urine biomarker exists. Routine labs are normal. There is no validated circulating biomarker for HME — a real gap, and the reason the CSF/electrode-DNA work matters.

Clinical criteria and differential diagnosis

No formal consensus diagnostic criteria exist (unlike TSC). Diagnosis = characteristic MRI + compatible clinical picture, with histology confirming after surgery.

Differential diagnosis:

Alternative Distinguishing feature
Hemispheric / multilobar focal cortical dysplasia Hemisphere not enlarged; ventricle normal size — this is the hardest and most important boundary, and it is a continuum, not a dichotomy (D'Gama 2017)
Tuberous sclerosis complex Multifocal bilateral tubers, subependymal nodules, systemic stigmata — but note TSC and HME co-occur (PMID:33387903, PMID:26231267)
Sturge-Weber syndrome Leptomeningeal angioma with contrast enhancement, gyriform calcification, hemiatrophy rather than hypertrophy
Congenital CMV / congenital infection Periventricular calcification, microcephaly, positive serology/PCR
Rasmussen encephalitis Later onset, progressive hemiatrophy, inflammatory histology
Hemispheric low-grade tumour (DNET, ganglioglioma) Discrete mass, contrast behaviour, different histology — though gangliogliomas also show mTOR activation
Perinatal arterial ischaemic stroke / porencephaly Vascular territory, encephalomalacia, hemiatrophy
MCAP / MPPH (megalencephaly syndromes) Bilateral brain overgrowth ± polymicrogyria; overlapping genes (PIK3CA, AKT3, PIK3R2) — same pathway, different clone geography
Hemispheric cortical dysplasia (HCD) Often grouped with HME in surgical series; increasingly treated as the same continuum

Screening

  • No newborn screening, no carrier screening, no population screening. Not appropriate for a somatic-mutation disease.
  • Cascade screening does apply in the two-hit subset: once a germline TSC1/TSC2/DEPDC5/NPRL2/NPRL3 variant is identified, first-degree relatives should be offered testing.
  • Prenatal detection by fetal MRI/ultrasound is real but opportunistic, not a screening programme.

11. Outcome / Prognosis

Survival and mortality

  • Untreated: high early morbidity; deaths from status epilepticus, aspiration, and complications of profound neurological impairment. No reliable population survival curve exists.
  • Surgical mortality has fallen dramatically. A meta-analysis reports overall procedure mortality 5% (hemispherectomy 7%, hemispherotomy 3%), with reported mortality falling "over the last 30 years from 32% to 2%" [secondhand — RE-VERIFY]. The 2026 infant series (n=15, surgery at median 6.4 months) reported no deaths [secondhand — RE-VERIFY, PMID:42132620].
  • Disease-specific mortality: no registry data.

Seizure outcomes after hemispheric surgery — the best-quantified prognostic data

Goel et al., Neurosurgery 2024 — IPD meta-analysis, n=145 from 26 studies (PMID:37975663) [verbatim-verified from cache]:

"Data from 145 patients were extracted from 26 studies, of which 89 underwent FH (22 vertical, 33 lateral), 47 underwent AH, and 9 received an unspecified hemispherectomy with a median last follow-up of 44.0 months (FH cohort) and 45.0 months (AH cohort). Cohorts were similar in preoperative characteristics and at the last follow-up; 77% (n = 66) of the FH cohort and 81% (n = 38) and of the AH cohort were Engel I." "On multivariate analysis, only the presence of bilateral ictal electroencephalography abnormalities (hazard ratio = 11.5; P = .002) was significantly associated with faster time-to-seizure recurrence." "A number-needed-to-treat analysis to prevent 1 additional case of posthemispherectomy hydrocephalus reveals that FH, compared with AH, was 3." "We show that hemispheric surgery is a highly effective treatment for HME-related DRE."

Goel et al., Epilepsia 2024 — UCLA single-centre, n=56, 1984–2021 (PMID:37873610) [secondhand — RE-VERIFY]: 24 patients (49%) seizure-free at median 55 months; 17 (30%) required CSF shunting for hydrocephalus; independent favourable predictors were "Younger age at seizure onset (HR = .29, p = .029), lack of epilepsia partialis continua (EPC) (HR = .30, p = .022), and no contralateral seizures on electroencephalography (EEG) (HR = .33, p = .039)."

Pielas et al., Epilepsia 2026 — infants <12 months, n=15 (PMID:42132620) [secondhand — RE-VERIFY]: Engel I at 12 months in 53.3% overall, 46% in HME specifically; all required transfusion, one-third >1 circulating volume; 26.7% shunted; ~40% ICU stay >5 days; complications included 2 intracerebral haemorrhages and 1 intraoperative cardiac arrest; no deaths.

Note the apparent tension between the meta-analysis (77–81% Engel I) and the single-centre series (46–53%). The meta-analysis aggregates published series with publication bias toward good outcomes and heterogeneous follow-up; the single-centre infant series is younger, sicker, and prospectively complete. Curate both; do not average them.

Morbidity, function, and quality of life

Puka et al., Epilepsia 2021 — cognitive/language outcomes after hemispherectomy for HME, n=45 (PMID:34608636) [secondhand — RE-VERIFY]: - 68% seizure-free - Only 43% demonstrated average or mildly impaired cognition - Only 26% could "speak age appropriately" - Only 21% achieved satisfactory reading - "55%, 43%, and 17% of children first babbled, spoke their first words, and started speaking in sentences at an age-appropriate period, respectively" - Better outcomes with right-hemisphere surgery and later seizure onset - Conclusion: children "continue to require significant language and literacy support long-term after cerebral hemispherectomy"

This is the outcome message that matters most for a knowledge base: seizure freedom and functional recovery are only loosely coupled. Two-thirds get seizure control; fewer than half get near-typical cognition; a quarter get fluent speech. Curate seizure outcome and developmental outcome as separate outcome nodes, not as one "prognosis."

Permanent expected deficits after hemispherectomy: contralateral hemiparesis (hand function largely lost, ambulation usually preserved) and homonymous hemianopia — these are accepted trade-offs, not complications.

Complications

  • Post-hemispherectomy hydrocephalus requiring shunt: 16–30% across series
  • Intraoperative blood loss (the dominant infant risk; the malformed hemisphere's vasculature is abnormal and hard to control)
  • Aseptic meningitis/fever (~33%), infection (~11%), hematoma requiring evacuation (~8%), subgaleal effusion (~8%) [secondhand — RE-VERIFY]
  • Late: superficial cerebral hemosiderosis, shunt dependence, contralateral seizure emergence

Prognostic factors

Favourable Unfavourable
Unilateral (hemisphere-confined) ictal EEG Bilateral ictal EEG abnormality (HR 11.5)
Absence of epilepsia partialis continua Epilepsia partialis continua
No contralateral seizures on EEG Contralateral EEG seizures
Right-hemisphere lesion (for language) Left-hemisphere lesion
Later seizure onset (for cognition) Very early / day-1 seizure onset (for cognition)
Complete disconnection at first surgery Incomplete disconnection → residual seizures
Functional over anatomic hemispherectomy (hydrocephalus risk) Anatomic hemispherectomy (NNT 3 for hydrocephalus)

Note the deliberate contradiction to record: younger age at seizure onset was favourable for seizure freedom in the UCLA series (HR .29) but is unfavourable for cognitive outcome. Those are different endpoints, and the field genuinely disagrees on the seizure-onset-age direction. Do not collapse them.

Prognostic biomarkers: none molecular. Attempts to correlate specific genotype (MTOR vs PIK3CA vs DEPDC5) with surgical outcome have not produced a validated predictor. This is a stated knowledge gap.


12. Treatment

12.1 Definitive treatment — hemispheric surgery

Hemispherectomy / hemispherotomy is the only definitive treatment for HME-related drug-resistant epilepsy.

  • Anatomic hemispherectomy (AH): removal of the hemisphere. Higher seizure-freedom in some series; higher hydrocephalus risk (NNT 3).
  • Functional hemispherectomy / hemispherotomy (FH): disconnection with minimal resection; vertical (parasagittal) or lateral (peri-insular) approaches — no significant difference between them (HR = 2.59; P = .101).
  • NCIT suggestions: NCIT:C15656 Neurosurgical Procedure (verified) or NCIT:C15329 Surgical Procedure (verified). ⚠️ NCIt has no "Hemispherectomy" term — I searched both the local sqlite:obo:ncit and live OLS and found none (MeSH D038421 and SNOMED 14247003 do have it). Use NCIT:C15656 with preferred_term: cerebral hemispherectomy and flag the ontology gap. therapeutic_modality: SURGERY.

12.2 Targeted therapy — mTOR inhibitors

The precision-medicine story, still mostly promissory but with a clear rationale and real case-level evidence.

Agents: sirolimus/rapamycin (CHEBI:9168 verified), everolimus (CHEBI:68478 verified). Both inhibit mTORC1 via FKBP12.

Regulatory status for HME: none. Off-label everywhere. Everolimus is approved for TSC-associated refractory focal seizures (EXIST-3) — not for HME or FCD.

Best case-level human evidence (PMID:30514132) [secondhand — RE-VERIFY]:

"We report a 6-day-old female with hemimegalencephaly and frequent seizures despite 9 antiseizure medications. At 3 months of age, while awaiting hemispherectomy, an mTOR inhibitor, rapamycin, was initiated by the neurologist. After 1 week of treatment, there was >50% reduction in seizures and total seizure burden, and after 2 weeks, development improved, resulting in deferral of surgery by 2.5 months with an increased body weight. Pathology demonstrated cortical dysplasia with upregulation of the mTOR pathway. Deep-sequencing of brain tissue demonstrated 16% mosaicism for a pathogenic de novo MTOR gene mutation. This case exemplifies how mTOR inhibitors could be considered for seizure reduction in patients with hemimegalencephaly while awaiting surgery."

The framing that matters: mTOR inhibition in HME is currently a bridge to surgery, not a substitute for it. It buys weight gain and reduces perioperative risk.

Counter-evidence to curate honestly: in an NPRL3-associated neonatal HME case, "mTOR inhibitor therapy proved ineffective but functional hemispherectomy at 3 months of age resulted in total abatement of clinical seizures" (PMID:33749980) [secondhand — RE-VERIFY]. Genotype may matter — GATOR1 (amino-acid-sensing arm) lesions may not respond like activator-arm lesions.

Trial status: D'Gama & Poduri (PMID:34608615, [verbatim-verified from cache]) — "Clinical studies of mTOR inhibitors for patients with FCD and HME are just emerging and will be an exciting area in the coming years." Active/registered trials are in FCD II, not HME: NCT02451696 (everolimus, brain mTOR activity in TSC and FCD, US, phase II open-label) and NCT03198949 (everolimus in FCD II, Korea, randomized double-blind placebo-controlled crossover phase II). Also NCT03646240 (ABI-009 / nab-rapamycin, RaSuRE, surgically-refractory epilepsy). No HME-specific registered trial was identified.

Cautions from the same review [verbatim-verified from cache]: "the long-term effects of early and potentially lifelong treatment with such broad inhibitors on immunosuppression, growth, and development, particularly neurodevelopment and sexual maturation, remain unclear and should prompt caution."

NCIT/CHEBI pattern:

- name: Sirolimus (mTOR inhibitor)
  therapeutic_modality: SMALL_MOLECULE
  treatment_term:
    preferred_term: Targeted Therapy
    term: {id: NCIT:C93352, label: Targeted Therapy}   # verified
    therapeutic_agent:
    - preferred_term: sirolimus
      term: {id: CHEBI:9168, label: sirolimus}          # verified
  target_mechanisms: ...  # INHIBITS the "Constitutive mTORC1 Activation" node

12.3 Antiseizure medications

Empiric and largely ineffective as monotherapy — that is the definition of the disease. Agents used: vigabatrin (CHEBI:63638 verified; first-line for spasms, retinal toxicity risk), ACTH/corticosteroids for spasms, levetiracetam (CHEBI:6437 verified), phenobarbital, topiramate, carbamazepine/oxcarbazepine, clobazam, cannabidiol, felbamate. The 2026 TAE series reports patients "required a median of 8 antiseizure medications during hospitalization" [secondhand — RE-VERIFY] — a number that speaks for itself. - NCIT: NCIT:C15986 Pharmacotherapy (verified), therapeutic_modality: SMALL_MOLECULE.

12.4 Emerging: staged transarterial embolization ("endovascular hemispherectomy")

A genuinely novel 2023–2026 development, worth a dedicated treatment node. - Concept: devascularize the malformed hemisphere endovascularly in stages, in neonates too small or unstable for open surgery. - PMID:36302639 (J Neurointerv Surg 2023): three infants aged 13 days–13 weeks; "all infants" remained "seizure-free to date" at 8–57 months follow-up [secondhand — RE-VERIFY] - PMID:42208165 (Pediatr Neurol 2026, n=8): mean seizure onset 9 days, first embolization ~50 days, 3–5 staged procedures; at discharge 75% achieved electrographic seizure freedom from the affected hemisphere; ASM burden fell from median 8 to median 4 [secondhand — RE-VERIFY] - A 2025 comparative study (TAE n=12 vs surgical hemispherectomy n=11) reported 6/8 (75%) seizure-free among TAE-primary patients [secondhand — RE-VERIFY] - PMID:40425282 (2026): complication analysis and evolution of strategy in infants <3 months - Applied even to TSC-related HME (PMID:41489603) - NCIT: NCIT:C15656 Neurosurgical Procedure or an interventional-radiology term; therapeutic_modality: DEVICE or SURGERY.

Evidence caveat for curation: this is single-institution, small-N, non-randomized, and short-follow-up. Curate as EMERGING, not established.

12.5 Supportive, dietary, and rehabilitative

  • Ketogenic dietNCIT:C173168 Ketogenic Diet (verified); mechanistically attractive given the pS6/pAkt reduction seen in ketogenic-fed rats. therapeutic_modality: BEHAVIORAL.
  • Vagus nerve stimulation — palliative; note NCIt's nearest verified term is NCIT:C203750 Transcutaneous Auricular VNS, which is not implanted VNS — do not use it for implanted VNS. Ontology gap.
  • Physical / occupational / speech therapyNCIT:C15302 Physical Therapy (verified), NCIT:C121351 occupational therapy, NCIT:C159273 speech therapy. therapeutic_modality: BEHAVIORAL.
  • Supportive careNCIT:C15747 Supportive Care (verified).
  • Genetic counselingNCIT:C15240 Genetic Counseling (verified). Essential specifically to distinguish the sporadic-somatic majority from the germline-predisposed minority.

12.6 Not applicable / no evidence

Gene therapy, gene editing, cell therapy, RNA therapeutics (ASO/siRNA), immunotherapy, and monoclonal antibodies: no HME programmes. Conceptually, an allele-selective approach is nearly impossible here — the lesion is built before birth and the pathological cells are structurally integrated. Correcting the genotype postnatally would not un-build the hemisphere. This is a mechanistically principled therapeutic ceiling worth stating in the entry.

12.7 Pharmacogenomics

  • Genotype-guided in the loosest sense: an identified mTOR-activator variant is the rationale for rapalog use. There is no validated PharmGKB/CPIC pharmacogenomic guidance for HME.
  • Practical PGx note: sirolimus/everolimus are CYP3A4/P-gp substrates and interact substantially with enzyme-inducing ASMs (carbamazepine, phenytoin, phenobarbital) — a real, curatable drug–drug interaction in exactly this patient population.

12.8 Treatment algorithm (synthesized)

  1. Neonatal seizures + characteristic MRI → diagnose HME; video-EEG to establish lateralization
  2. Trial ASMs (vigabatrin/ACTH if spasms) — expect failure
  3. Refer to a paediatric epilepsy surgery centre early. Delay costs development.
  4. If too small/unstable for open surgery: consider mTOR inhibitor as a bridge, and/or staged transarterial embolization at experienced centres
  5. Hemispherotomy (functional) as first surgical management — the meta-analysis favours it on hydrocephalus grounds at equivalent seizure outcome
  6. Send resected tissue for deep sequencing + pS6 IHC; send blood for germline testing
  7. Lifelong rehabilitation, education support, and — given the caregiver-burden data — family support that does not stop when the seizures do

13. Prevention

  • Primary prevention: none possible. A spontaneous postzygotic mutation in embryogenesis is not preventable by any known intervention. Vaccination, diet, exposure avoidance — all not applicable. State this plainly rather than leaving the section empty.
  • Secondary prevention (the real content of this section): early surgical intervention to prevent epileptic encephalopathy. The whole "buy time, then operate early" strategy — mTOR inhibitor bridging, staged embolization — is secondary prevention of developmental catastrophe. The TSC precedent (EPISTOP, PMID data in D'Gama & Poduri) that pre-emptive vigabatrin on EEG-epileptiform-activity before clinical seizures delays seizure onset and reduces refractory epilepsy at 2 years is the model. It has not been tested in HME, but prenatally diagnosed HME is precisely the situation where such a design becomes thinkable. Flag as a proposed experiment.
  • Tertiary prevention: seizure control, aspiration/nutrition management, orthopaedic and spasticity management for the hemiparesis, shunt surveillance post-surgery, developmental and educational support.
  • Immunization: not applicable to disease causation; standard childhood schedule applies, with the caveat that live vaccines are contraindicated on mTOR inhibitors.
  • Screening: no population or newborn screening. Cascade genetic screening is indicated only in the germline-predisposition subset (TSC1/TSC2/DEPDC5/NPRL2/NPRL3).
  • Genetic counselling (NCIT:C15240): the core preventive service. Key messages: (a) for isolated somatic HME, recurrence risk is near-baseline; (b) germline mosaicism cannot be formally excluded; (c) if a germline predisposing allele is found, the counselling flips entirely to autosomal dominant with 50% transmission and the option of prenatal/preimplantation testing for the predisposition (not for HME itself, which requires the unpredictable second hit).
  • Prenatal testing: fetal MRI/ultrasound can detect the lesion; molecular prenatal diagnosis is not feasible for a brain-restricted somatic variant (amniocytes and CVS won't carry it).
  • Public health / environmental interventions: not applicable.

14. Other Species / Natural Disease

  • Taxonomy of naturally affected species: Homo sapiens (NCBITaxon:9606) only, as far as the literature shows.
  • Naturally occurring HME in animals: not documented. I searched specifically for canine/feline/veterinary hemimegalencephaly and found no case reports. Veterinary neurology does describe unilateral cerebral abnormalities (porencephaly, hydranencephaly, hydrocephalus) in dogs and cats, but these are destructive/cavitary lesions, not hemispheric overgrowth, and are mechanistically unrelated. OMIA has no HME entry.
  • Reason this is unsurprising: HME requires a somatic mutation in a large-brained, long-corticogenesis species, and would require deliberate imaging of a neonate with seizures — an ascertainment pipeline that barely exists in veterinary practice.
  • Orthologous genes (for model-organism curation): mouse Mtor (NCBI Gene 56717), Pik3ca (18706), Akt3 (23797), Akt1 (11651), Rheb (19744), Tsc1 (64930), Tsc2 (22084), Depdc5 (277854), Pten (19211). The PI3K–AKT–mTOR module is deeply conserved from yeast (TOR1/TOR2) onward — one of the most conserved growth-control circuits in eukaryotes.
  • Comparative pathology: engineered rodent models reproduce cytomegaly, dyslamination, migration failure, and seizures (§15), but no rodent model reproduces hemisphere-scale unilateral overgrowth, because the lissencephalic mouse cortex lacks the outer subventricular zone and outer radial glia that drive human cortical expansion. This is a textbook HUMAN_MODEL_MISMATCH, and should be curated as one.
  • Zoonotic potential / cross-species transmission: not applicable.
  • Breed (VBO): not applicable.

15. Model Organisms

15.1 Mouse — in utero electroporation (the workhorse)

The dominant paradigm: electroporate a mutant construct into a subset of dorsal telencephalic progenitors at ~E14.5, thereby manufacturing mosaicism on purpose. Elegant, because it models the mechanism of the mechanism — a clone, not an organism.

From D'Gama & Poduri (PMID:34608615) [verbatim-verified from cache]:

"In utero electroporation of the variant that results in the Akt3 E17K substitution leads to abnormal cortical architecture, cytomegalic neurons, abnormal neuronal migration, and electrographic seizures that are rescued when rapamycin is administered prenatally but not postnatally." "Prenatal conditional expression of Pik3ca mutations leads to megalencephaly, abnormal cortical architecture, cytomegalic neurons, and seizures, and acute postnatal treatment with the PI3K inhibitor BKM120 suppressed seizures." "In utero electroporation of the variant that results in Mtor L2427P leads to abnormal neuronal migration, cytomegalic neurons, and spontaneous seizures, and postnatal rapamycin suppressed cytomegalic neurons and seizures." "In utero electroporation of the variant that results in Rheb Y35L leads to abnormal neuronal migration, cytomegalic neurons, and seizures, and postnatal rapamycin significantly reduced seizure frequency."

The AKT3 timing result is the single most important preclinical finding in this disease, and it cuts against the therapeutic hope: prenatal rapamycin rescues the malformation; postnatal rapamycin does not. Reported specifics: rapamycin 3 mg/kg/day E15.5–E18.5 rescued cortical malformation and cytomegaly; P1–P3 dosing did not, with spontaneous seizures at ~P28 [secondhand — RE-VERIFY]. Curate this as a HUMAN_MODEL_MISMATCH or at minimum as an explicit caveat on the mTOR-inhibitor treatment node: the structural lesion may have a closed therapeutic window that the seizures do not.

15.2 Mouse — conditional / knockout models of repressors

Also from PMID:34608615 [verbatim-verified from cache]:

"Conditional knockout of Pten in neurons leads to megalencephaly, cytomegalic neurons, and seizures, and rapamycin suppressed seizures, including in older mice with established epilepsy." "Depdc5+/− rats have cytomegalic neurons and balloon-like cells (Depdc5−/− models are embryonic lethal), and prenatal rapamycin suppressed the abnormal cells." "Focal mosaic knockout of Depdc5 in mouse brain leads to abnormal cortical lamination, balloon-like cells, and spontaneous epilepsy, and prenatal rapamycin rescued neuronal migration defects." "Conditional knockout of Depdc5 in neurons leads to megalencephaly, cytomegalic neurons, and seizures, and postnatal chronic rapamycin prolonged survival and decreased brain size and neuronal soma size."

Note the interesting inversion: in Pten models, rapamycin works even in older mice with established epilepsy — unlike the AKT3 electroporation result. Genotype-dependent therapeutic windows are a live hypothesis.

15.3 Mouse — lineage-restricted conditional activation

D'Gama 2017: conditional Pik3ca activation showing that mTOR activation "in excitatory neurons and glia, but not interneurons, is sufficient for abnormal cortical overgrowth." [secondhand — RE-VERIFY] The key cell-type-attribution experiment.

Also from PMID:34608615 [verbatim-verified from cache]: "Single cell studies of human brain tissue resected in the course of clinical treatment and mouse studies have suggested that abnormal hyperactivation of the mTOR pathway in neurons is necessary for disease pathogenesis, and further that such hyperactivation in the excitatory neuron lineage is necessary and in some cases sufficient."

15.4 Rat

Depdc5+/− rats (see above). Also PI3K/mTOR inhibition preventing ictal activity and cell death in rat hippocampal organotypic post-traumatic epilepsy cultures (Crino, PMID:26060899) — relevant to mechanism, not to HME specifically.

15.5 Human cortical organoids (iPSC/ESC) — the model that addresses the mouse's biggest limitation

Zhang et al., BBA Mol Basis Dis 2024 (PMID:38759814) [secondhand — RE-VERIFY]:

"Focal malformations of cortical development (FMCDs) are brain disorders mainly caused by hyperactive mTOR signaling due to both inactivating and activating mutations of genes in the PI3K-AKT-mTOR pathway." "mosaic and somatic expression of AKT3 activating mutations in cortical organoids mimicking the disease presentation with overproliferation and the formation of dysmorphic neurons"

The study also reports an allelic-strength gradient: stronger AKT3 activating mutations → more severe migratory and overgrowth defects. That is the in vitro counterpart of the human VAF-severity relationship, from a different direction.

Why organoids matter here specifically: they carry human oRG/OSVZ biology that mice lack, which is exactly the biology that scales a human hemisphere. But they lack vasculature, immune cells, a full developmental timeline, and — critically for an epilepsy — mature circuits and behaviour. Neither model alone can carry a claim about human HME.

15.6 Model characteristics summary

Model Recapitulates Fails to recapitulate
Mouse IUE (Akt3/Pik3ca/Mtor/Rheb) mosaicism, cytomegaly, dyslamination, migration failure, spontaneous seizures, rapamycin response hemisphere-scale unilateral overgrowth; gyrification; human oRG/OSVZ expansion; human seizure semiology
Mouse conditional KO (Pten/Depdc5/Tsc1/Tsc2) megalencephaly, cytomegaly, balloon-like cells, epilepsy, drug response focality/mosaicism (unless focal-mosaic KO used); unilaterality
Depdc5+/− rat cytomegalic neurons, balloon-like cells homozygotes embryonic lethal; limited epilepsy phenotype
Human cortical organoids (AKT3, PIK3CA) human progenitor biology, over-proliferation, dysmorphic neurons, allelic dose-response vasculature, immunity, circuits, seizures, full timeline
No model the unilateral, hemisphere-restricted geometry that names the disease

15.7 Resources

MGI (Mtor, Pik3ca, Akt3, Pten, Depdc5, Tsc1, Tsc2 alleles), IMPC/KOMP, IMSR, RGD (Depdc5 rat), Alliance of Genome Resources, Addgene (AKT3 E17K, MTOR, RHEB constructs), Cellosaurus (engineered hESC/iPSC lines from the organoid work).


Appendix A — Verified ontology terms (checked this session against local OAK adapters)

Confirmed correct (label matches exactly):

CURIE Label Adapter
MONDO:0020492 hemimegalencephaly sqlite:obo:mondo
HP:0007206 Hemimegalencephaly sqlite:obo:hp
HP:0001355 Megalencephaly sqlite:obo:hp
HP:0001250 Seizure sqlite:obo:hp
HP:0011097 Epileptic spasm sqlite:obo:hp
HP:0011182 Interictal epileptiform activity sqlite:obo:hp
HP:0002376 Developmental regression sqlite:obo:hp
HP:0001249 Intellectual disability sqlite:obo:hp
HP:0000256 Macrocephaly sqlite:obo:hp
HP:0001344 Absent speech sqlite:obo:hp
HP:0007370 Aplasia/Hypoplasia of the corpus callosum sqlite:obo:hp
HP:0002269 Abnormality of neuronal migration sqlite:obo:hp
HP:0002119 Ventriculomegaly sqlite:obo:hp
GO:0031929 TOR signaling sqlite:obo:go
GO:0032008 positive regulation of TOR signaling sqlite:obo:go
GO:0032006 regulation of TOR signaling sqlite:obo:go
GO:0038202 TORC1 signaling sqlite:obo:go
GO:0043491 phosphatidylinositol 3-kinase/protein kinase B signal transduction sqlite:obo:go
GO:0001764 neuron migration sqlite:obo:go
GO:0021814 cell motility involved in cerebral cortex radial glia guided migration sqlite:obo:go
GO:0016049 cell growth sqlite:obo:go
GO:0008283 cell population proliferation sqlite:obo:go
GO:0021987 cerebral cortex development sqlite:obo:go
GO:0007420 brain development sqlite:obo:go
GO:0006412 translation sqlite:obo:go
GO:0006914 autophagy sqlite:obo:go
GO:0045595 regulation of cell differentiation sqlite:obo:go
CL:0000681 radial glial cell sqlite:obo:cl
CL:0011020 neural progenitor cell sqlite:obo:cl
CL:0000679 glutamatergic neuron sqlite:obo:cl
CL:0000598 pyramidal neuron sqlite:obo:cl
CL:0000127 astrocyte sqlite:obo:cl
CL:0000128 oligodendrocyte sqlite:obo:cl
CL:0000617 GABAergic neuron sqlite:obo:cl
UBERON:0001869 cerebral hemisphere sqlite:obo:uberon
UBERON:0000956 cerebral cortex sqlite:obo:uberon
UBERON:0002285 telencephalic ventricle sqlite:obo:uberon
UBERON:0002316 white matter sqlite:obo:uberon
UBERON:0002336 corpus callosum sqlite:obo:uberon
CHEBI:9168 sirolimus sqlite:obo:chebi
CHEBI:68478 everolimus sqlite:obo:chebi
CHEBI:63638 vigabatrin sqlite:obo:chebi
CHEBI:6437 levetiracetam sqlite:obo:chebi
NCIT:C15986 Pharmacotherapy sqlite:obo:ncit
NCIT:C93352 Targeted Therapy sqlite:obo:ncit
NCIT:C15656 Neurosurgical Procedure sqlite:obo:ncit
NCIT:C15329 Surgical Procedure sqlite:obo:ncit
NCIT:C173168 Ketogenic Diet sqlite:obo:ncit
NCIT:C15302 Physical Therapy sqlite:obo:ncit
NCIT:C15240 Genetic Counseling sqlite:obo:ncit
NCIT:C15747 Supportive Care sqlite:obo:ncit
NCIT:C15447 Dietary Intervention sqlite:obo:ncit

Do NOT use: - GO:0014065OBSOLETE ("obsolete phosphatidylinositol 3-kinase signaling"). Use GO:0043491. - NCIT:C177779 as a hemimegalencephaly mapping — it resolves to "MCAP Syndrome", a different entity, despite MONDO xref-ing it. Verify against live NCIt and consider an upstream MONDO issue. - NCIT:C203750 for implanted vagus nerve stimulation — it is Transcutaneous Auricular VNS.

Ontology gaps identified: 1. No CL term for balloon cell or dysmorphic/cytomegalic neuron — the defining cells of this disease. 2. No HP term for hemihypsarrhythmia. 3. No NCIt term for hemispherectomy (MeSH D038421 and SNOMED 14247003 have it). 4. No HPO mode-of-inheritance term for somatic mosaicism / postzygotic non-heritable — a systematic problem for every mosaic disease in the KB, not just this one.


Appendix B — Citation index

PMID Citation Verification status
22500628 Poduri A et al. Somatic activation of AKT3 causes hemispheric developmental brain malformations. Neuron 2012;74:41-8 abstract verbatim-verified via raw efetch
22729223 Lee JH et al. De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway cause hemimegalencephaly. Nat Genet 2012;44:941-5. doi:10.1038/ng.2329 cached in repo, verbatim-verified
22729224 Rivière JB et al. De novo germline and postzygotic mutations in AKT3, PIK3R2 and PIK3CA cause a spectrum of related megalencephaly syndromes. Nat Genet 2012;44:934-40. doi:10.1038/ng.2331 secondhand — RE-VERIFY
25599672 D'Gama AM et al. Mammalian target of rapamycin pathway mutations cause hemimegalencephaly and focal cortical dysplasia. Ann Neurol 2015;77:720-5 abstract verbatim-verified via raw efetch
25722288 Jansen LA et al. PI3K/AKT pathway mutations cause a spectrum of brain malformations from megalencephaly to focal cortical dysplasia. Brain 2015 secondhand — RE-VERIFY
26060899 Crino PB. Focal Cortical Dysplasia. Semin Neurol 2015;35:201-8 cached in repo (full text), verbatim-verified
28377884 Evolution of epilepsy in hemimegalencephaly from infancy to adulthood. Epilepsy Behav Case Rep 2017 secondhand — RE-VERIFY
29281825 D'Gama AM et al. Somatic Mutations Activating the mTOR Pathway in Dorsal Telencephalic Progenitors Cause a Continuum of Cortical Dysplasias. Cell Rep 2017 secondhand — RE-VERIFY
30514132 mTOR Inhibitors as a New Therapeutic Strategy in Treatment Resistant Epilepsy in Hemimegalencephaly: A Case Report. J Child Neurol 2019 secondhand — RE-VERIFY
31444548 Baldassari S et al. Dissecting the genetic basis of focal cortical dysplasia: a large cohort study. Acta Neuropathol 2019 abstract verbatim-verified via raw efetch
33387903 Hemimegalencephaly and tuberous sclerosis complex: A rare yet challenging association. Eur J Paediatr Neurol 2021 secondhand — RE-VERIFY
33738444 Cerebrospinal fluid liquid biopsy for detecting somatic mosaicism in brain. Brain Commun 2021 secondhand — RE-VERIFY
33749980 Hemimegalencephaly and intractable seizures associated with the NPRL3 gene variant in a newborn. Am J Med Genet A 2021 secondhand — RE-VERIFY
34608615 D'Gama AM, Poduri A. Precision Therapy for Epilepsy Related to Brain Malformations. Neurotherapeutics 2021;18:1548-63 cached in repo (full text), verbatim-verified
34608636 Puka K et al. Functional cognitive and language outcomes after cerebral hemispherectomy for hemimegalencephaly. Epilepsia 2021;62:2932-40 secondhand — RE-VERIFY
35022853 Hemispherectomy for hemimegalencephaly in a 6.5-week-old infant with TSC. Childs Nerv Syst 2022 secondhand — RE-VERIFY
36302639 Definitive treatment of seizures due to hemimegalencephaly … by transarterial embolization. J Neurointerv Surg 2023 secondhand — RE-VERIFY
36325654 Itoh M et al. Somatic mosaicism of the PI3K-AKT-MTOR pathway is associated with hemimegalencephaly in fetal brains. Neuropathology 2023 secondhand — RE-VERIFY
37149062 Gerasimenko A, Baldassari S, Baulac S. mTOR pathway: Insights into an established pathway for brain mosaicism in epilepsy. Neurobiol Dis 2023;182:106144 cached in repo, verbatim-verified
37873610 Goel K et al. Hemispheric epilepsy surgery for hemimegalencephaly: The UCLA experience. Epilepsia 2024 secondhand — RE-VERIFY
37975663 Goel K et al. Hemimegalencephaly: A Systematic Comparison of Functional and Anatomic Hemispherectomy for Drug-Resistant Epilepsy. Neurosurgery 2024;94:666-78 cached in repo, verbatim-verified
38617140 Prenatal diagnosis of hemimegalencephaly via transabdominal and transvaginal ultrasonography. Quant Imaging Med Surg 2024 secondhand — RE-VERIFY
38759814 A spectrum of AKT3 activating mutations cause focal malformations of cortical development in cortical organoids. BBA Mol Basis Dis 2024;1870:167232 secondhand — RE-VERIFY
39454530 Facial infiltrating lipomatosis with contralateral hemimegalencephaly. Seizure 2024 secondhand — RE-VERIFY
39641771 Macdonald-Laurs E et al. ILAE genetic literacy series: Focal cortical dysplasia. Epileptic Disord 2025 secondhand — RE-VERIFY
39926610 The genetic landscape and classification of infantile epileptic spasms syndrome requiring surgery due to suspected focal brain malformations. Brain Commun 2025 abstract verbatim-verified via raw efetch
39973610 Gelot A et al. Cytomegalic parvalbumin neurons in fetal cases of hemimegalencephaly. Epilepsia 2025 no abstract obtained — RE-VERIFY
40344425 Uncrossed Cerebellar Diaschisis in Hemimegalencephaly: FDG-PET and DTI. Int J Dev Neurosci 2025 secondhand — RE-VERIFY
40425282 Transarterial embolization for infants under 3 months … complication analysis. J Neurointerv Surg 2026 secondhand — RE-VERIFY
41033188 Clinical and radiological evaluation of children with hemimegalencephaly and epilepsy: A single-center study. Seizure 2025 secondhand — RE-VERIFY
41489603 Hemispheric endovascular embolization in an infant with TSC-related hemimegalencephaly. Seizure 2026 secondhand — RE-VERIFY
42024976 A novel PTEN variant causing hemimegalencephaly and focal nodular heterotopias in the developing human brain. Epilepsia 2026 secondhand — RE-VERIFY
42132620 Pielas M et al. Hemispheric surgery for hemimegalencephaly and hemispheric cortical dysplasia in infants below 12 months of age. Epilepsia 2026 secondhand — RE-VERIFY
42208165 Seizure Burden and Management in Infants With Hemimegalencephaly Prestaged and Poststaged Transarterial Embolization. Pediatr Neurol 2026 secondhand — RE-VERIFY

Structured-source references also citable: ORPHA:99802 (Orphanet disorder record — definition, epidemiology class, phenotype table).

Registered trials referenced: NCT02451696 (everolimus, TSC & FCD, phase II), NCT03198949 (everolimus in FCD II, phase II crossover), NCT03646240 (ABI-009/nab-rapamycin, RaSuRE), NCT01713946 (EXIST-3, TSC — context only), NCT02098759 (EPISTOP, TSC — context only). No HME-specific interventional trial identified.


Appendix C — Stated knowledge gaps (candidates for discussions: blocks)

  1. KNOWLEDGE_GAP — no population prevalence or incidence for HME. The only circulating figure (1–3 per 1,000 children with epilepsy) has an epilepsy denominator and cannot be converted to a population rate.
  2. KNOWLEDGE_GAP — the genetic literature is ascertained entirely through surgery. Non-operated and milder HME is molecularly unsampled; the true genotype spectrum and the true "unsolved" fraction are unknown.
  3. HUMAN_MODEL_MISMATCH — no animal model reproduces unilateral hemisphere-scale overgrowth. Rodents lack the outer subventricular zone / outer radial glia biology that scales the human cortex, so every mouse result about magnitude of overgrowth is of uncertain human validity. Proposed resolution: human cortical organoid and assembloid models with mosaic mutation induction at defined developmental stages; comparative ferret/primate work.
  4. HUMAN_MODEL_MISMATCH — interneuron involvement. Mouse conditional-activation data say mTOR activation in interneurons is not sufficient for overgrowth (D'Gama 2017); human fetal pathology shows cytomegalic parvalbumin interneurons (Gelot 2025). Proposed resolution: single-nucleus multiome of human HME tissue with lineage-resolved variant calling.
  5. KNOWLEDGE_GAP — closed therapeutic window for the structural lesion. Prenatal rapamycin rescues the Akt3-E17K malformation in mice; postnatal does not. Whether postnatal mTOR inhibition in humans can do anything beyond seizure suppression is unresolved, and it determines whether "precision therapy for HME" means disease modification or symptom control.
  6. KNOWLEDGE_GAP — no genotype-outcome predictor. Whether MTOR- vs PIK3CA- vs DEPDC5-associated HME differ in surgical outcome, mTOR-inhibitor responsiveness, or developmental trajectory has not been tested with adequate power. The NPRL3 non-response case (PMID:33749980) hints that the amino-acid-sensing arm may behave differently.
  7. KNOWLEDGE_GAP — no HME-specific quality-of-life instrument, and caregiver burden does not improve with seizure freedom. The seizure-outcome literature and the family-outcome literature barely touch.
  8. KNOWLEDGE_GAP — no validated non-invasive molecular diagnostic. CSF cfDNA sensitivity is low (3/12 in one series); depth-electrode DNA is preprint-stage. Until one works, molecular diagnosis requires removing the hemisphere first, which is diagnostically backwards.