Warburg micro syndrome is a rare autosomal recessive Mendelian neurodevelopmental disorder characterized by congenital ocular abnormalities, severe developmental impairment, microcephaly, corpus callosum malformation, progressive tone abnormalities, and genital hypoplasia. The disease series is caused by biallelic pathogenic variants in genes that converge on Rab GTPase regulation and membrane-trafficking biology, including RAB3GAP1, RAB3GAP2, RAB18, and TBC1D20.
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name: Warburg micro syndrome
creation_date: "2026-05-07T15:59:44Z"
updated_date: "2026-05-07T16:36:52Z"
description: >-
Warburg micro syndrome is a rare autosomal recessive Mendelian
neurodevelopmental disorder characterized by congenital ocular abnormalities,
severe developmental impairment, microcephaly, corpus callosum malformation,
progressive tone abnormalities, and genital hypoplasia. The disease series is
caused by biallelic pathogenic variants in genes that converge on Rab GTPase
regulation and membrane-trafficking biology, including RAB3GAP1, RAB3GAP2,
RAB18, and TBC1D20.
category: Mendelian
parents:
- Mendelian neurodevelopmental disorder
- autosomal recessive disease
synonyms:
- WARBM
- Micro syndrome
disease_term:
preferred_term: Warburg micro syndrome
term:
id: MONDO:0016649
label: Warburg micro syndrome
inheritance:
- name: Autosomal recessive inheritance
description: >-
Warburg micro syndrome is inherited in an autosomal recessive pattern, with
affected individuals carrying biallelic pathogenic variants in one of the
disease genes.
inheritance_term:
preferred_term: Autosomal recessive inheritance
term:
id: HP:0000007
label: Autosomal recessive inheritance
has_subtypes:
- name: WARBM1
display_name: Warburg micro syndrome 1 (RAB3GAP1)
subtype_term:
preferred_term: Warburg micro syndrome 1
term:
id: MONDO:0010822
label: Warburg micro syndrome 1
genes:
- preferred_term: RAB3GAP1
term:
id: hgnc:17063
label: RAB3GAP1
- name: WARBM2
display_name: Warburg micro syndrome 2 (RAB3GAP2)
subtype_term:
preferred_term: Warburg micro syndrome 2
term:
id: MONDO:0013641
label: Warburg micro syndrome 2
genes:
- preferred_term: RAB3GAP2
term:
id: hgnc:17168
label: RAB3GAP2
- name: WARBM3
display_name: Warburg micro syndrome 3 (RAB18)
subtype_term:
preferred_term: Warburg micro syndrome 3
term:
id: MONDO:0013638
label: Warburg micro syndrome 3
genes:
- preferred_term: RAB18
term:
id: hgnc:14244
label: RAB18
- name: WARBM4
display_name: Warburg micro syndrome 4 (TBC1D20)
subtype_term:
preferred_term: Warburg micro syndrome 4
term:
id: MONDO:0014296
label: Warburg micro syndrome 4
genes:
- preferred_term: TBC1D20
term:
id: hgnc:16133
label: TBC1D20
genetic:
- name: RAB3GAP1
association: Causal biallelic pathogenic variants in RAB3GAP1
gene_term:
preferred_term: RAB3GAP1
term:
id: hgnc:17063
label: RAB3GAP1
evidence:
- reference: DOI:10.1002/ajmg.a.62234
reference_title: 'From cataract to syndrome diagnosis: Revaluation of Warburg-Micro syndrome Type 1 patients'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Although WARBM shows genetic heterogeneity, the pathogenic variants in
RAB3GAP1 were the most common cause of WARBM.
explanation: >-
Supports RAB3GAP1 as a major causal gene for Warburg micro syndrome.
- reference: CGGV:assertion_a1e4a47e-757a-442f-b82f-2ddfd69d0854-2020-05-26T160000.000Z
reference_title: "RAB3GAP1 / Warburg micro syndrome (Definitive)"
supports: SUPPORT
evidence_source: OTHER
snippet: "RAB3GAP1 | HGNC:17063 | Warburg micro syndrome | MONDO:0016649 | AR | Definitive"
explanation: ClinGen classifies the RAB3GAP1-Warburg micro syndrome gene-disease relationship as definitive with autosomal recessive inheritance.
- name: RAB3GAP2
association: Causal biallelic pathogenic variants in RAB3GAP2
gene_term:
preferred_term: RAB3GAP2
term:
id: hgnc:17168
label: RAB3GAP2
evidence:
- reference: DOI:10.1098/rsob.150047
reference_title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro
syndrome, a rare autosomal recessive multisystem disorder.
explanation: >-
Supports RAB3GAP2 as one of the genes mutated in Warburg micro syndrome.
- reference: CGGV:assertion_a322fa3e-2985-4f60-9b4b-87f333cf9431-2023-11-28T200000.000Z
reference_title: "RAB3GAP2 / Warburg micro syndrome (Definitive)"
supports: SUPPORT
evidence_source: OTHER
snippet: "RAB3GAP2 | HGNC:17168 | Warburg micro syndrome | MONDO:0016649 | AR | Definitive"
explanation: ClinGen classifies the RAB3GAP2-Warburg micro syndrome gene-disease relationship as definitive with autosomal recessive inheritance.
- name: RAB18
association: Causal biallelic pathogenic variants in RAB18
gene_term:
preferred_term: RAB18
term:
id: hgnc:14244
label: RAB18
evidence:
- reference: DOI:10.1098/rsob.150047
reference_title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro
syndrome, a rare autosomal recessive multisystem disorder.
explanation: >-
Supports RAB18 as one of the genes mutated in Warburg micro syndrome.
- reference: CGGV:assertion_4f09a474-8789-4f05-8f7e-611698d30936-2023-09-30T160000.000Z
reference_title: "RAB18 / Warburg micro syndrome (Moderate)"
supports: SUPPORT
evidence_source: OTHER
snippet: "RAB18 | HGNC:14244 | Warburg micro syndrome | MONDO:0016649 | AR | Moderate"
explanation: ClinGen classifies the RAB18-Warburg micro syndrome gene-disease relationship as moderate with autosomal recessive inheritance.
- name: TBC1D20
association: Causal biallelic pathogenic variants in TBC1D20
gene_term:
preferred_term: TBC1D20
term:
id: hgnc:16133
label: TBC1D20
evidence:
- reference: DOI:10.1098/rsob.150047
reference_title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro
syndrome, a rare autosomal recessive multisystem disorder.
explanation: >-
Supports TBC1D20 as one of the genes mutated in Warburg micro syndrome.
pathophysiology:
- name: Rab GTPase regulatory complex dysfunction
description: >-
Biallelic pathogenic variants in RAB3GAP1 or RAB3GAP2 disrupt the
RAB3GAP complex, disturbing Rab-family small GTPase signaling during
nervous-system and ocular development.
genes:
- preferred_term: RAB3GAP1
term:
id: hgnc:17063
label: RAB3GAP1
- preferred_term: RAB3GAP2
term:
id: hgnc:17168
label: RAB3GAP2
biological_processes:
- preferred_term: Rab protein signal transduction
term:
id: GO:0032482
label: Rab protein signal transduction
modifier: ABNORMAL
downstream:
- target: Membrane trafficking disruption
description: Disrupted Rab regulation perturbs vesicle-mediated trafficking.
- target: Neurodevelopmental impairment
description: Rab-pathway disruption contributes to impaired brain development.
evidence:
- reference: DOI:10.1098/rsob.150047
reference_title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro
syndrome, a rare autosomal recessive multisystem disorder.
explanation: >-
Supports the shared Rab-regulatory gene axis in Warburg micro syndrome.
- name: Membrane trafficking disruption
description: >-
Loss of RAB18 or TBC1D20 function disrupts Rab18-associated membrane
trafficking across the endomembrane system, linking Warburg micro syndrome
to abnormal vesicular transport and organelle organization.
genes:
- preferred_term: RAB18
term:
id: hgnc:14244
label: RAB18
- preferred_term: TBC1D20
term:
id: hgnc:16133
label: TBC1D20
biological_processes:
- preferred_term: vesicle-mediated transport
term:
id: GO:0016192
label: vesicle-mediated transport
modifier: ABNORMAL
- preferred_term: endoplasmic reticulum to Golgi vesicle-mediated transport
term:
id: GO:0006888
label: endoplasmic reticulum to Golgi vesicle-mediated transport
modifier: ABNORMAL
- preferred_term: Golgi organization
term:
id: GO:0007030
label: Golgi organization
modifier: ABNORMAL
downstream:
- target: Neurodevelopmental impairment
description: Endomembrane trafficking defects impair developing neural tissues.
- target: Ocular developmental abnormality
description: Endomembrane trafficking defects impair anterior-segment and lens development.
- target: Defective Autophagosome Maturation
description: TBC1D20/Rab-pathway disruption perturbs autophagy maturation.
- target: Lipid Droplet Homeostasis Defect
description: TBC1D20-related trafficking defects alter ER-to-lipid droplet biology.
evidence:
- reference: DOI:10.1083/jcb.202406139
reference_title: TBC1D20 coordinates vesicle transport and actin remodeling to regulate ciliogenesis
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
Here, we identify TBC1D20 as a novel Rab11 GTPase-activating protein that
coordinates vesicle transport and actin remodeling to regulate
ciliogenesis.
explanation: >-
Supports TBC1D20-mediated Rab trafficking disruption as a cellular
mechanism in WARBM.
- name: Defective Autophagosome Maturation
description: >-
TBC1D20 and RAB3GAP1/Rab-pathway dysfunction links Warburg micro syndrome to
impaired autophagy and autophagosome maturation, particularly in nervous
system and patient-derived cellular contexts.
genes:
- preferred_term: TBC1D20
term:
id: hgnc:16133
label: TBC1D20
- preferred_term: RAB3GAP1
term:
id: hgnc:17063
label: RAB3GAP1
biological_processes:
- preferred_term: autophagy
term:
id: GO:0006914
label: autophagy
modifier: ABNORMAL
cellular_components:
- preferred_term: autophagosome
term:
id: GO:0005776
label: autophagosome
downstream:
- target: Neurodevelopmental impairment
description: Autophagy impairment is linked to neurodevelopmental and ocular disease biology.
evidence:
- reference: DOI:10.1002/jimd.12798
reference_title: An update on autophagy disorders
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Recently identified monogenic disorders linking selective autophagy,
vesicular trafficking, and other pathways have further expanded the
molecular and phenotypical spectrum of congenital disorders of autophagy
as a clinical disease spectrum.
explanation: >-
Supports Warburg micro syndrome mechanisms within the congenital
autophagy/vesicular trafficking disease spectrum.
- reference: DOI:10.1080/15548627.2016.1199300
reference_title: TBC1D20 mediates autophagy as a key regulator of autophagosome maturation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
TBC1D20 mediates autophagy as a key regulator of autophagosome maturation
explanation: >-
Supports TBC1D20 as an autophagosome maturation regulator relevant to
WARBM4.
- name: Lipid Droplet Homeostasis Defect
description: >-
Warburg micro syndrome genes, particularly TBC1D20 and RAB18/Rab-pathway
biology, intersect with ER-to-lipid droplet trafficking and lipid droplet
growth.
genes:
- preferred_term: TBC1D20
term:
id: hgnc:16133
label: TBC1D20
- preferred_term: RAB18
term:
id: hgnc:14244
label: RAB18
biological_processes:
- preferred_term: lipid droplet organization
term:
id: GO:0034389
label: lipid droplet organization
modifier: ABNORMAL
downstream:
- target: Neurodevelopmental impairment
description: Lipid-droplet and ER trafficking defects may contribute to multisystem disease.
evidence:
- reference: DOI:10.1126/sciadv.ade7753
reference_title: Rab1b facilitates lipid droplet growth by ER-to-lipid droplet targeting of DGAT2
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
Last, alterations in LD metabolism and DGAT2 redistribution, consistent
with Rab1b activity, were caused by mutations in the Rab1b–GTPase
activating protein TBC1D20 in Warburg Micro syndrome (WARBM) model mice
fibroblasts.
explanation: >-
Supports altered lipid-droplet metabolism in WARBM model cells with
TBC1D20 perturbation.
- name: Neurodevelopmental impairment
description: >-
The convergent nervous-system outcome is severe neurodevelopmental
impairment with microcephaly, brain malformations, intellectual disability,
abnormal tone, and delayed motor development.
cell_types:
- preferred_term: neuron
term:
id: CL:0000540
label: neuron
- preferred_term: Purkinje cell
term:
id: CL:0000121
label: Purkinje cell
biological_processes:
- preferred_term: neuron development
term:
id: GO:0048666
label: neuron development
modifier: ABNORMAL
downstream:
- target: Global developmental delay
description: Abnormal neurodevelopment causes delayed milestone acquisition.
- target: Severe intellectual disability
description: Abnormal neurodevelopment causes severe cognitive impairment.
- target: Microcephaly
description: Abnormal neurodevelopment causes reduced head circumference.
- target: Hypoplasia of the corpus callosum
description: Abnormal brain development causes corpus callosum hypoplasia.
- target: Polymicrogyria
description: Cortical malformation can include polymicrogyria.
evidence:
- reference: DOI:10.1002/jdn.10264
reference_title: Exome sequencing identifies a novel pathogenic variant in <i>RAB3GAP1</i> causing Warburg Micro syndrome in a Pakistani family
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Magnetic resonance imaging (MRI) analysis revealed pronounced cerebral
atrophy including corpus callosum hypoplasia and polymicrogyria.
explanation: >-
Supports corpus callosum and cortical malformation as human WARBM
neurodevelopmental outcomes.
- name: Ocular developmental abnormality
description: >-
Warburg micro syndrome includes congenital maldevelopment of the eye,
especially microphthalmia, microcornea, cataract, and optic nerve atrophy.
cell_types:
- preferred_term: retinal ganglion cell
term:
id: CL:0000740
label: retinal ganglion cell
biological_processes:
- preferred_term: camera-type eye morphogenesis
term:
id: GO:0048593
label: camera-type eye morphogenesis
modifier: ABNORMAL
downstream:
- target: Microphthalmia
description: Ocular developmental defects include small globe size.
- target: Congenital cataract
description: Lens opacity is a defining congenital ocular phenotype.
- target: Optic atrophy
description: Optic nerve involvement contributes to severe visual impairment.
evidence:
- reference: DOI:10.1242/dmm.015222
reference_title: A novel mouse model of Warburg Micro Syndrome reveals roles for RAB18 in eye development and organisation of the neuronal cytoskeleton
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: >-
Rab18 mutant mice are viable and fertile. They present with congenital
nuclear cataracts and atonic pupils, recapitulating characteristic ocular
features associated with WARBM.
explanation: >-
Supports WARBM gene disruption causing ocular developmental phenotypes in
a mouse model.
phenotypes:
- name: Severe intellectual disability
category: Neurodevelopmental
diagnostic: true
description: Severe intellectual disability is a defining neurodevelopmental manifestation.
phenotype_term:
preferred_term: Severe intellectual disability
term:
id: HP:0001249
label: Intellectual disability
severity: SEVERE
- name: Global developmental delay
category: Neurodevelopmental
diagnostic: true
description: Affected children have profound global developmental delay.
phenotype_term:
preferred_term: Global developmental delay
term:
id: HP:0001263
label: Global developmental delay
onset:
onset_category: INFANTILE
- name: Microcephaly
category: Neurologic
description: Reduced head circumference is a core cranial-neurodevelopmental feature.
phenotype_term:
preferred_term: Microcephaly
term:
id: HP:0000252
label: Microcephaly
- name: Hypoplasia of the corpus callosum
category: Neurologic
description: Agenesis or hypoplasia of the corpus callosum is part of the brain-malformation spectrum.
phenotype_term:
preferred_term: Hypoplasia of the corpus callosum
term:
id: HP:0002079
label: Hypoplasia of the corpus callosum
onset:
onset_category: CONGENITAL
- name: Microphthalmia
category: Ophthalmologic
diagnostic: true
description: Microphthalmia is one of the defining ocular malformations.
phenotype_term:
preferred_term: Microphthalmia
term:
id: HP:0000568
label: Microphthalmia
onset:
onset_category: CONGENITAL
- name: Microcornea
category: Ophthalmologic
description: Microcornea is a common anterior-segment abnormality in the syndrome.
phenotype_term:
preferred_term: Microcornea
term:
id: HP:0000482
label: Microcornea
onset:
onset_category: CONGENITAL
- name: Congenital cataract
category: Ophthalmologic
diagnostic: true
description: Congenital cataract is a defining ocular manifestation.
phenotype_term:
preferred_term: Congenital cataract
term:
id: HP:0000518
label: Cataract
onset:
onset_category: CONGENITAL
- name: Optic atrophy
category: Ophthalmologic
description: Optic nerve atrophy contributes to severe visual impairment.
phenotype_term:
preferred_term: Optic atrophy
term:
id: HP:0000648
label: Optic atrophy
- name: Hypotonia
category: Neurologic
description: Early hypotonia is part of the motor phenotype.
phenotype_term:
preferred_term: Hypotonia
term:
id: HP:0001252
label: Hypotonia
- name: Spastic diplegia
category: Neurologic
description: Progressive lower-limb spasticity can develop over time.
phenotype_term:
preferred_term: Spastic diplegia
term:
id: HP:0001264
label: Spastic diplegia
clinical_course: PROGRESSIVE
- name: Hypogonadotropic hypogonadism
category: Endocrine
description: Genital hypoplasia and hypogonadism are recognized features of the syndrome.
phenotype_term:
preferred_term: Hypogonadotropic hypogonadism
term:
id: HP:0000044
label: Hypogonadotropic hypogonadism
- name: Polymicrogyria
category: Neurologic
description: Polymicrogyria is a cortical malformation reported in WARBM1.
phenotype_term:
preferred_term: Polymicrogyria
term:
id: HP:0002126
label: Polymicrogyria
evidence:
- reference: DOI:10.1002/jdn.10264
reference_title: Exome sequencing identifies a novel pathogenic variant in <i>RAB3GAP1</i> causing Warburg Micro syndrome in a Pakistani family
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Magnetic resonance imaging (MRI) analysis revealed pronounced cerebral
atrophy including corpus callosum hypoplasia and polymicrogyria.
explanation: >-
Directly supports polymicrogyria as a reported WARBM brain malformation.
- name: Cryptorchidism
category: Genitourinary
description: Male genital hypoplasia in Warburg micro syndrome can include undescended testes.
phenotype_term:
preferred_term: Cryptorchidism
term:
id: HP:0000028
label: Cryptorchidism
- name: Micropenis
category: Genitourinary
description: Male genital hypoplasia in Warburg micro syndrome can include micropenis.
phenotype_term:
preferred_term: Micropenis
term:
id: HP:0000054
label: Micropenis
treatments:
- name: Supportive multidisciplinary management
description: >-
Management is supportive and coordinated across neurology, ophthalmology,
rehabilitation, feeding, endocrine, orthopedic, and developmental-care
services; no disease-modifying therapy is established.
treatment_term:
preferred_term: supportive care
term:
id: NCIT:C15747
label: Supportive Care
- name: Cataract surgery
description: >-
Early cataract extraction can be used to treat congenital cataracts, though
visual outcomes may remain limited by optic nerve and broader
neurodevelopmental involvement.
treatment_term:
preferred_term: surgical procedure
term:
id: MAXO:0000004
label: surgical procedure
target_phenotypes:
- preferred_term: Cataract
term:
id: HP:0000518
label: Cataract
evidence:
- reference: DOI:10.1177/2633004020938061
reference_title: 'Congenital cataract: a guide to genetic and clinical management'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Early surgery and close follow up in ophthalmology is important to
optimise visual potential and prevent amblyopia.
explanation: >-
Supports early cataract surgery as clinically important for congenital
cataract management.
- name: Genetic counseling
description: >-
Genetic counseling is appropriate after molecular diagnosis to explain
autosomal recessive inheritance, recurrence risk, carrier testing, and
reproductive options.
treatment_term:
preferred_term: genetic counseling
term:
id: MAXO:0000079
label: genetic counseling
evidence:
- reference: DOI:10.1177/2633004020938061
reference_title: 'Congenital cataract: a guide to genetic and clinical management'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Genetic counselling services can support families in understanding their
diagnosis and inform future family planning.
explanation: >-
Supports genetic counseling as part of syndromic congenital cataract and
family-planning management.
datasets: []
clinical_trials: []
references:
- reference: DOI:10.1002/ajmg.a.62234
title: 'From cataract to syndrome diagnosis: Revaluation of <scp>Warburg‐Micro</scp> syndrome <scp>Type</scp> 1 patients'
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Warburg‐Micro syndrome (WARBM) is a rare autosomal recessively inherited neuro‐ophthalmologic syndrome.
supporting_text: Warburg‐Micro syndrome (WARBM) is a rare autosomal recessively inherited neuro‐ophthalmologic syndrome.
evidence:
- reference: DOI:10.1002/ajmg.a.62234
reference_title: 'From cataract to syndrome diagnosis: Revaluation of <scp>Warburg‐Micro</scp> syndrome <scp>Type</scp> 1 patients'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Warburg‐Micro syndrome (WARBM) is a rare autosomal recessively inherited neuro‐ophthalmologic syndrome.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1002/jdn.10264
title: Exome sequencing identifies a novel pathogenic variant in <i>RAB3GAP1</i> causing Warburg Micro syndrome in a Pakistani family
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Warburg Micro (WARBM) syndrome is a rare heterogeneous recessive genetic disorder characterized by ocular, neurological, and endocrine problems.
supporting_text: Warburg Micro (WARBM) syndrome is a rare heterogeneous recessive genetic disorder characterized by ocular, neurological, and endocrine problems.
evidence:
- reference: DOI:10.1002/jdn.10264
reference_title: Exome sequencing identifies a novel pathogenic variant in <i>RAB3GAP1</i> causing Warburg Micro syndrome in a Pakistani family
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Warburg Micro (WARBM) syndrome is a rare heterogeneous recessive genetic disorder characterized by ocular, neurological, and endocrine problems.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1002/jimd.12798
title: An update on autophagy disorders
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Macroautophagy is a highly conserved cellular pathway for the degradation and recycling of defective cargo including proteins, organelles, and macromolecular complexes.
supporting_text: Macroautophagy is a highly conserved cellular pathway for the degradation and recycling of defective cargo including proteins, organelles, and macromolecular complexes.
evidence:
- reference: DOI:10.1002/jimd.12798
reference_title: An update on autophagy disorders
supports: SUPPORT
evidence_source: OTHER
snippet: Macroautophagy is a highly conserved cellular pathway for the degradation and recycling of defective cargo including proteins, organelles, and macromolecular complexes.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1016/j.ajhg.2011.03.012
title: Loss-of-Function Mutations in RAB18 Cause Warburg Micro Syndrome
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Loss-of-Function Mutations in RAB18 Cause Warburg Micro Syndrome
supporting_text: Loss-of-Function Mutations in RAB18 Cause Warburg Micro Syndrome
- reference: DOI:10.1016/j.ajhg.2013.10.011
title: Loss-of-Function Mutations in TBC1D20 Cause Cataracts and Male Infertility in blind sterile Mice and Warburg Micro Syndrome in Humans
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Loss-of-Function Mutations in TBC1D20 Cause Cataracts and Male Infertility in blind sterile Mice and Warburg Micro Syndrome in Humans
supporting_text: Loss-of-Function Mutations in TBC1D20 Cause Cataracts and Male Infertility in blind sterile Mice and Warburg Micro Syndrome in Humans
- reference: DOI:10.1016/j.expneurol.2015.03.003
title: ENU mutagenesis identifies mice modeling Warburg Micro Syndrome with sensory axon degeneration caused by a deletion in Rab18
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: ENU mutagenesis identifies mice modeling Warburg Micro Syndrome with sensory axon degeneration caused by a deletion in Rab18
supporting_text: ENU mutagenesis identifies mice modeling Warburg Micro Syndrome with sensory axon degeneration caused by a deletion in Rab18
- reference: DOI:10.1016/j.nbd.2015.11.016
title: A mutation in the Warburg syndrome gene, RAB3GAP1, causes a similar syndrome with polyneuropathy and neuronal vacuolation in Black Russian Terrier dogs
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: A mutation in the Warburg syndrome gene, RAB3GAP1, causes a similar syndrome with polyneuropathy and neuronal vacuolation in Black Russian Terrier dogs
supporting_text: A mutation in the Warburg syndrome gene, RAB3GAP1, causes a similar syndrome with polyneuropathy and neuronal vacuolation in Black Russian Terrier dogs
- reference: DOI:10.1055/s-0043-1768693
title: First Clinical Report of Two RAB3GAP1 Pathogenic Variant in Warburg Micro Syndrome
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Warburg micro (WARBM) syndrome is an autosomal recessive disease characterized by severe brain and eye abnormalities.
supporting_text: Warburg micro (WARBM) syndrome is an autosomal recessive disease characterized by severe brain and eye abnormalities.
evidence:
- reference: DOI:10.1055/s-0043-1768693
reference_title: First Clinical Report of Two RAB3GAP1 Pathogenic Variant in Warburg Micro Syndrome
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Warburg micro (WARBM) syndrome is an autosomal recessive disease characterized by severe brain and eye abnormalities.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1055/s-0043-57022
title: 'Congenital Cataract and Narrow CSP: A Clue to Prenatal Diagnosis of RAB3GAP1-Associated Warburg Micro Syndrome'
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Warburg Micro Syndrome (WMS) is an autosomal recessive disorder characterized by intellectual disability, bilateral congenital cataracts, microphthalmia, and brain anomalies.
supporting_text: Warburg Micro Syndrome (WMS) is an autosomal recessive disorder characterized by intellectual disability, bilateral congenital cataracts, microphthalmia, and brain anomalies.
evidence:
- reference: DOI:10.1055/s-0043-57022
reference_title: 'Congenital Cataract and Narrow CSP: A Clue to Prenatal Diagnosis of RAB3GAP1-Associated Warburg Micro Syndrome'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Warburg Micro Syndrome (WMS) is an autosomal recessive disorder characterized by intellectual disability, bilateral congenital cataracts, microphthalmia, and brain anomalies.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1080/15548627.2016.1199300
title: TBC1D20 mediates autophagy as a key regulator of autophagosome maturation
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: TBC1D20 mediates autophagy as a key regulator of autophagosome maturation
supporting_text: TBC1D20 mediates autophagy as a key regulator of autophagosome maturation
- reference: DOI:10.1083/jcb.202406139
title: TBC1D20 coordinates vesicle transport and actin remodeling to regulate ciliogenesis
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: TBC1D20 deficiency causes Warburg Micro Syndrome in humans, characterized by multiple eye abnormalities, severe intellectual disability, and abnormal sexual development, but the molecular mechanisms remain unknown.
supporting_text: TBC1D20 deficiency causes Warburg Micro Syndrome in humans, characterized by multiple eye abnormalities, severe intellectual disability, and abnormal sexual development, but the molecular mechanisms remain unknown.
evidence:
- reference: DOI:10.1083/jcb.202406139
reference_title: TBC1D20 coordinates vesicle transport and actin remodeling to regulate ciliogenesis
supports: SUPPORT
evidence_source: IN_VITRO
snippet: TBC1D20 deficiency causes Warburg Micro Syndrome in humans, characterized by multiple eye abnormalities, severe intellectual disability, and abnormal sexual development, but the molecular mechanisms remain unknown.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1098/rsob.150047
title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro syndrome, a rare autosomal recessive multisystem disorder.
supporting_text: RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro syndrome, a rare autosomal recessive multisystem disorder.
evidence:
- reference: DOI:10.1098/rsob.150047
reference_title: Warburg Micro syndrome is caused by RAB18 deficiency or dysregulation
supports: SUPPORT
evidence_source: IN_VITRO
snippet: RAB18 , RAB3GAP1 , RAB3GAP2 and TBC1D20 are each mutated in Warburg Micro syndrome, a rare autosomal recessive multisystem disorder.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1126/sciadv.ade7753
title: Rab1b facilitates lipid droplet growth by ER–to–lipid droplet targeting of DGAT2
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Lipid droplets (LDs) comprise a triglyceride core surrounded by a lipid monolayer enriched with proteins, many of which function in LD homeostasis.
supporting_text: Lipid droplets (LDs) comprise a triglyceride core surrounded by a lipid monolayer enriched with proteins, many of which function in LD homeostasis.
evidence:
- reference: DOI:10.1126/sciadv.ade7753
reference_title: Rab1b facilitates lipid droplet growth by ER–to–lipid droplet targeting of DGAT2
supports: SUPPORT
evidence_source: IN_VITRO
snippet: Lipid droplets (LDs) comprise a triglyceride core surrounded by a lipid monolayer enriched with proteins, many of which function in LD homeostasis.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1177/2633004020938061
title: 'Congenital cataract: a guide to genetic and clinical management'
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Worldwide 20,000–40,000 children with congenital or childhood cataract are born every year with varying degrees and patterns of lens opacification with a broad aetiology.
supporting_text: Worldwide 20,000–40,000 children with congenital or childhood cataract are born every year with varying degrees and patterns of lens opacification with a broad aetiology.
evidence:
- reference: DOI:10.1177/2633004020938061
reference_title: 'Congenital cataract: a guide to genetic and clinical management'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Worldwide 20,000–40,000 children with congenital or childhood cataract are born every year with varying degrees and patterns of lens opacification with a broad aetiology.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1186/s13023-014-0113-9
title: Large homozygous RAB3GAP1 gene microdeletion causes Warburg Micro Syndrome 1
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Large homozygous RAB3GAP1 gene microdeletion causes Warburg Micro Syndrome 1
supporting_text: Large homozygous RAB3GAP1 gene microdeletion causes Warburg Micro Syndrome 1
- reference: DOI:10.1186/s13023-022-02340-7
title: Clinical and genetic spectrums of 413 North African families with inherited retinal dystrophies and optic neuropathies
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Inherited retinal dystrophies (IRD) and optic neuropathies (ION) are the two major causes world-wide of early visual impairment, frequently leading to legal blindness.
supporting_text: Inherited retinal dystrophies (IRD) and optic neuropathies (ION) are the two major causes world-wide of early visual impairment, frequently leading to legal blindness.
evidence:
- reference: DOI:10.1186/s13023-022-02340-7
reference_title: Clinical and genetic spectrums of 413 North African families with inherited retinal dystrophies and optic neuropathies
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: Inherited retinal dystrophies (IRD) and optic neuropathies (ION) are the two major causes world-wide of early visual impairment, frequently leading to legal blindness.
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1186/s40478-025-02204-8
title: 'Biallelic null RAB3GAP1 variants impair cortical development and autophagy in Warburg Micro syndrome: evidence from fetal brain tissue and patient fibroblasts'
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: 'Biallelic null RAB3GAP1 variants impair cortical development and autophagy in Warburg Micro syndrome: evidence from fetal brain tissue and patient fibroblasts'
supporting_text: 'Biallelic null RAB3GAP1 variants impair cortical development and autophagy in Warburg Micro syndrome: evidence from fetal brain tissue and patient fibroblasts'
- reference: DOI:10.1242/dmm.015222
title: A novel mouse model of Warburg Micro Syndrome reveals roles for RAB18 in eye development and organisation of the neuronal cytoskeleton
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Mutations in RAB18 have been shown to cause the heterogeneous autosomal recessive disorder Warburg Micro syndrome (WARBM).
supporting_text: Mutations in RAB18 have been shown to cause the heterogeneous autosomal recessive disorder Warburg Micro syndrome (WARBM).
evidence:
- reference: DOI:10.1242/dmm.015222
reference_title: A novel mouse model of Warburg Micro Syndrome reveals roles for RAB18 in eye development and organisation of the neuronal cytoskeleton
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: Mutations in RAB18 have been shown to cause the heterogeneous autosomal recessive disorder Warburg Micro syndrome (WARBM).
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.1534/g3.115.022707
title: A <i>RAB3GAP1</i> SINE Insertion in Alaskan Huskies with Polyneuropathy, Ocular Abnormalities, and Neuronal Vacuolation (POANV) Resembling Human Warburg Micro Syndrome 1 (WARBM1)
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: We observed a hereditary phenotype in Alaskan Huskies that was characterized by polyneuropathy with ocular abnormalities and neuronal vacuolation (POANV).
supporting_text: We observed a hereditary phenotype in Alaskan Huskies that was characterized by polyneuropathy with ocular abnormalities and neuronal vacuolation (POANV).
evidence:
- reference: DOI:10.1534/g3.115.022707
reference_title: A <i>RAB3GAP1</i> SINE Insertion in Alaskan Huskies with Polyneuropathy, Ocular Abnormalities, and Neuronal Vacuolation (POANV) Resembling Human Warburg Micro Syndrome 1 (WARBM1)
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: We observed a hereditary phenotype in Alaskan Huskies that was characterized by polyneuropathy with ocular abnormalities and neuronal vacuolation (POANV).
explanation: Deep research cited this publication as relevant literature for Warburg Micro Syndrome.
- reference: DOI:10.2147/ijwh.s511730
title: Prenatal Ultrasound Diagnosis and Prognosis Analysis of Fetal Congenital Cataract
found_in:
- Warburg_Micro_Syndrome-deep-research-falcon.md
findings:
- statement: Prenatal Ultrasound Diagnosis and Prognosis Analysis of Fetal Congenital Cataract
supporting_text: Prenatal Ultrasound Diagnosis and Prognosis Analysis of Fetal Congenital Cataract
Warburg Micro syndrome (also called MICRO syndrome) is an extremely rare, autosomal recessive, genetically heterogeneous neuro-ophthalmologic and neuroendocrine disorder characterized by congenital/early ocular malformations (notably congenital cataracts), severe neurodevelopmental impairment with brain malformations (e.g., corpus callosum hypoplasia/agenesis, cortical malformations), and hypogonadism/genital anomalies. The canonical disease genes are RAB3GAP1, RAB3GAP2, RAB18, and TBC1D20, which converge on RAB18-regulated membrane trafficking, ER organization, lipid droplet biology, and autophagy. Recent reports (2023) emphasize prenatal detection via fetal ultrasound plus rapid phenotype-driven sequencing. (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3, lallar2023congenitalcataractand pages 1-2, handley2015warburgmicrosyndrome pages 1-2)
WARBM is described in recent clinical genetics literature as a rare autosomal recessive disorder with ocular, neurological/neurodevelopmental, and endocrine/neuroendocrine abnormalities. Core features include microcephaly, microphthalmia, microcornea, congenital cataracts, optic atrophy, corpus callosum hypoplasia/agenesis, severe intellectual disability, spasticity, hypotonia, and hypogonadism. (ullah2023exomesequencingidentifies pages 1-5, akkus2023firstclinicalreport pages 1-2, pickerminh2014largehomozygousrab3gap1 pages 1-3)
A key practical identifier set in the retrieved primary literature is OMIM/MIM subtype mapping (WARBM1–4), alongside widely used synonyms/abbreviations (WARBM, WMS, MICRO syndrome). A structured identifier table is provided below.
| Disease / subtype | Synonyms / abbreviations in retrieved sources | Syndrome OMIM/MIM ID | Associated gene | Gene MIM ID | Not found in retrieved sources | Key citation sources |
|---|---|---|---|---|---|---|
| Warburg Micro syndrome (overall) | Warburg micro syndrome; Warburg Micro Syndrome; WARBM; WARBM syndrome; WMS; MICRO syndrome; Micro syndrome (akkus2023firstclinicalreport pages 5-6, ullah2023exomesequencingidentifies pages 9-13, bouzidi2022clinicalandgenetic pages 20-21) | Overall syndrome OMIM/MIM not explicitly provided in retrieved sources; subtype IDs available below (pickerminh2014largehomozygousrab3gap1 pages 1-3) | Genetically heterogeneous: RAB3GAP1, RAB3GAP2, RAB18, TBC1D20 (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3) | Gene MIMs available by subtype below (pickerminh2014largehomozygousrab3gap1 pages 1-3) | Orphanet ID not found; ICD-10 not found; ICD-11 not found; MeSH not found; MONDO not found in retrieved sources (pickerminh2014largehomozygousrab3gap1 pages 1-3, pickerminh2014largehomozygousrab3gap1 pages 3-5, akkus2023firstclinicalreport pages 5-6, ullah2023exomesequencingidentifies pages 9-13) | (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3, akkus2023firstclinicalreport pages 5-6, ullah2023exomesequencingidentifies pages 9-13, bouzidi2022clinicalandgenetic pages 20-21) |
| Warburg Micro syndrome 1 | WARBM1; Warburg Micro Syndrome 1 (pickerminh2014largehomozygousrab3gap1 pages 1-3, pickerminh2014largehomozygousrab3gap1 pages 3-5, pickerminh2014largehomozygousrab3gap1 pages 5-6) | MIM#600118 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | RAB3GAP1 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | MIM*602536 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | Orphanet ID not found; ICD-10 not found; ICD-11 not found; MeSH not found; MONDO not found in retrieved sources (pickerminh2014largehomozygousrab3gap1 pages 1-3) | (pickerminh2014largehomozygousrab3gap1 pages 1-3, pickerminh2014largehomozygousrab3gap1 pages 5-6) |
| Warburg Micro syndrome 2 | WARBM2; WMS2; Warburg micro syndrome 2 (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | MIM#614225 in one source; 212720 reported in one cataract review source (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | RAB3GAP2 (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | Gene MIM reported in subtype table source but not legible in retrieved summary; exact gene MIM not recoverable from provided context (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | Orphanet ID not found; ICD-10 not found; ICD-11 not found; MeSH not found; MONDO not found in retrieved sources (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) |
| Warburg Micro syndrome 3 | WARBM3; Warburg micro syndrome 3 (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | MIM#614222 (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | RAB18 (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | Gene MIM reported as *602207 in retrieved disease summary (ullah2023exomesequencingidentifies pages 1-5) | Orphanet ID not found; ICD-10 not found; ICD-11 not found; MeSH not found; MONDO not found in retrieved sources (pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) | (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3, bell2020congenitalcataracta pages 13-15) |
| Warburg Micro syndrome 4 | WARBM4; Warburg micro syndrome 4 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | MIM#615663 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | TBC1D20 (pickerminh2014largehomozygousrab3gap1 pages 1-3) | Gene MIM reported as *611663 in retrieved disease summary (ullah2023exomesequencingidentifies pages 1-5) | Orphanet ID not found; ICD-10 not found; ICD-11 not found; MeSH not found; MONDO not found in retrieved sources (pickerminh2014largehomozygousrab3gap1 pages 1-3) | (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3) |
Table: This table compiles the identifiers and names for Warburg Micro syndrome and its subtypes using only retrieved evidence. It highlights available OMIM/MIM subtype information, associated genes, and explicitly notes identifier systems that were not found in the retrieved sources.
Note on missing identifiers: In the retrieved corpus, explicit Orphanet/Orpha codes, ICD-10/ICD-11 codes, MeSH headings, and MONDO identifiers were not found; these should be populated from those databases directly in a production knowledge base workflow. (pickerminh2014largehomozygousrab3gap1 pages 1-3, pickerminh2014largehomozygousrab3gap1 pages 3-5, akkus2023firstclinicalreport pages 5-6)
Most disease feature statements in this report derive from individual/family case reports/series and mechanistic primary studies (human fibroblasts, fetal tissue, and animal models). Aggregated perspectives include an autophagy-disorders review and a congenital cataract management review, but much of the WARBM-specific evidence is patient-based. (dafsari2025anupdateon pages 7-9, bell2020congenitalcataracta pages 1-2)
Primary cause: biallelic pathogenic variants (loss-of-function or damaging variants) in RAB3GAP1, RAB3GAP2, RAB18, or TBC1D20. (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3)
Key mechanistic framing: Warburg Micro syndrome can be caused directly by RAB18 deficiency or indirectly via loss of its regulators (RAB3GAP complex or TBC1D20), with consequent alteration of RAB18 level/localization/dynamics. (handley2015warburgmicrosyndrome pages 1-2, handley2015warburgmicrosyndrome pages 2-3)
Genetic risk factors: autosomal recessive inheritance with frequent reports in consanguineous families; multiple series explicitly report consanguinity and segregation consistent with AR inheritance. (lallar2023congenitalcataractand pages 2-3, akkus2023firstclinicalreport pages 2-3, ullah2023exomesequencingidentifies pages 1-5, albayrak2021fromcataractto pages 1-2)
Environmental risk factors: Not supported as causal in the retrieved corpus. Case-based prenatal workups often include TORCH testing as an alternative explanation for fetal cataracts; negative TORCH results support a genetic etiology in those cases. (lallar2023congenitalcataractand pages 2-3)
No genetic or environmental protective factors were identified in the retrieved sources.
No explicit gene–environment interactions were identified in the retrieved sources.
WARBM is typically congenital/early-onset (ocular anomalies at birth or detectable prenatally; severe developmental impairment evident in infancy). Prenatal ultrasound detection of congenital cataracts can occur at ~18–25 weeks gestation in reports/cohorts. (lallar2023congenitalcataractand pages 1-2, wang2025prenatalultrasounddiagnosis pages 7-9, noel2025biallelicnullrab3gap1 pages 1-2)
Key features: congenital bilateral cataracts, microphthalmia, microcornea, optic atrophy/optic nerve atrophy, and atrophic optic discs. (ullah2023exomesequencingidentifies pages 1-5, akkus2023firstclinicalreport pages 3-4, wang2025prenatalultrasounddiagnosis pages 7-9)
Frequency examples from a 7-patient WARBM1 cohort: bilateral congenital cataracts in 7/7; microphthalmia 5/7; microcornea 3/7; optic atrophy 3/7; photosensitivity 5/7. (albayrak2021fromcataractto pages 1-2)
Suggested HPO terms (examples): - Congenital cataract HP:0000519 - Microphthalmia HP:0000568 - Microcornea HP:0000482 - Optic atrophy HP:0000648
Affected anatomy (UBERON examples): lens of eye (UBERON), optic nerve (UBERON), cornea (UBERON), retina (UBERON).
Key features: severe developmental delay/intellectual disability (often absent speech), hypotonia (reported as universal in compiled case literature), spasticity/spastic diplegia, and structural brain malformations including corpus callosum hypoplasia/agenesis and cortical malformations (pachygyria/polymicrogyria). (akkus2023firstclinicalreport pages 1-2, albayrak2021fromcataractto pages 2-3, pickerminh2014largehomozygousrab3gap1 pages 1-3)
MRI findings: hypoplasia/agenesis of corpus callosum, polymicrogyria/pachygyria, cerebral atrophy, cerebellar atrophy/hypoplasia, myelination defects. (noel2025biallelicnullrab3gap1 pages 1-2, pickerminh2014largehomozygousrab3gap1 pages 1-3, pickerminh2014largehomozygousrab3gap1 pages 3-5)
Example cohort statistic: In the 7-patient WARBM1 re-evaluation study, corpus callosum hypoplasia was detected in all patients, including complete agenesis in one. (albayrak2021fromcataractto pages 2-3)
Suggested HPO terms (examples): - Global developmental delay HP:0001263 - Intellectual disability, severe/profound HP:0010864 / HP:0002187 - Hypotonia HP:0001252 - Spasticity HP:0001257 - Agenesis of corpus callosum HP:0001274 / Corpus callosum hypoplasia HP:0002079 - Polymicrogyria HP:0002126
Suggested brain anatomy (UBERON examples): corpus callosum, cerebral cortex, cerebellum; optic chiasm is specifically noted as hypotrophic in one WARBM1 deletion case. (pickerminh2014largehomozygousrab3gap1 pages 3-5)
Key features: hypogonadism with micropenis and cryptorchidism; described across case-based literature and emphasized as part of the core syndrome. (akkus2023firstclinicalreport pages 1-2, albayrak2021fromcataractto pages 2-3)
Suggested HPO terms (examples): - Cryptorchidism HP:0000028 - Micropenis HP:0000054 - Hypogonadism HP:0000135
Skeletal/bone: osteopenia/osteoporosis highlighted in a WARBM1 family with a large RAB3GAP1 deletion; vitamin D supplementation did not improve it in that report, supporting a potential primary disease association. (pickerminh2014largehomozygousrab3gap1 pages 3-5, pickerminh2014largehomozygousrab3gap1 pages 1-3)
Peripheral neuropathy/cardiomyopathy: cited as rare additional features in literature summarized by a 2023 case report. (akkus2023firstclinicalreport pages 5-6)
Suggested HPO terms (examples): - Osteopenia HP:0000938 / Osteoporosis HP:0000939 - Peripheral neuropathy HP:0009830 - Cardiomyopathy HP:0001638
Direct QoL instrument data (EQ-5D, SF-36, PROMIS) were not identified in the retrieved corpus. Functionally, severe neurodevelopmental impairment is common, including inability to achieve major motor and communication milestones in many reported cases. (akkus2023firstclinicalreport pages 1-2, albayrak2021fromcataractto pages 2-3)
Canonical WARBM genes: RAB3GAP1, RAB3GAP2, RAB18, TBC1D20. (ullah2023exomesequencingidentifies pages 1-5, pickerminh2014largehomozygousrab3gap1 pages 1-3)
A gene/variant summary table based on retrieved evidence is provided below.
| Subtype | Gene | Inheritance | Variant examples (HGVS) | Variant class | Study population / case count | Notable genotype–phenotype notes | Key sources (with DOI URLs) |
|---|---|---|---|---|---|---|---|
| WARBM1 | RAB3GAP1 | Autosomal recessive | c.520C>T (p.Arg174Ter); c.559C>T (p.Arg187Ter) | Nonsense / predicted loss-of-function | 2 unrelated Turkish patients (2023 report) | Severe classic WARBM phenotype with microcephaly, microphthalmia, microcornea, bilateral congenital cataracts, severe intellectual disability, congenital hypotonia; parents heterozygous carriers (akkus2023firstclinicalreport pages 3-4) | Akkuş 2023, DOI: https://doi.org/10.1055/s-0043-1768693 (akkus2023firstclinicalreport pages 3-4) |
| WARBM1 | RAB3GAP1 | Autosomal recessive | c.2891A>G (p.Gln964Arg) | Missense, ACMG likely pathogenic | Consanguineous Pakistani family; 2 affected siblings / 3 affected individuals reported in family context | Ocular anomalies, severe ID, spastic diplegia, hypogonadism, cerebral atrophy, corpus callosum hypoplasia, polymicrogyria; authors note RAB3GAP1 accounts for ~70% of WARBM cases (ullah2023exomesequencingidentifies pages 1-5, ullah2023exomesequencingidentifies pages 5-9) | Ullah 2023, DOI: https://doi.org/10.1002/jdn.10264 (ullah2023exomesequencingidentifies pages 1-5, ullah2023exomesequencingidentifies pages 5-9) |
| WARBM1 (prenatal) | RAB3GAP1 | Autosomal recessive | c.131delT (p.Leu44Trpfs*50) | Frameshift | 1 fetus diagnosed prenatally at 18 weeks | Prenatal ultrasound clues were bilateral congenital cataracts and narrow cavum septi pellucidi; microarray normal; phenotype-driven NGS established diagnosis; 25% recurrence risk counseling and discussion of CVS/PGT-M for future pregnancies (lallar2023congenitalcataractand pages 1-2, lallar2023congenitalcataractand pages 2-3) | Lallar 2023, DOI: https://doi.org/10.1055/s-0043-57022 (lallar2023congenitalcataractand pages 1-2, lallar2023congenitalcataractand pages 2-3) |
| WARBM1 (prenatal/postnatal follow-up) | RAB3GAP1 | Autosomal recessive | c.718C>T (p.Gln240); c.1879dupA (p.Thr627Asnfs4) | Nonsense + frameshift | 1 case (Case 17) from prenatal congenital cataract cohort | Prenatal bilateral cataracts; bilateral lensectomy at 3 months; optic nerve atrophy by 1 year and poor vision by age 4, illustrating that surgery may not normalize outcome when syndromic neuro-ophthalmic disease is present (wang2025prenatalultrasounddiagnosis pages 7-9) | Wang 2025, DOI: https://doi.org/10.2147/IJWH.S511730 (wang2025prenatalultrasounddiagnosis pages 7-9) |
| WARBM1 | RAB3GAP1 | Autosomal recessive | c.258_261delAGAA (p.Gly88ArgfsTer5); c.2187_2188delGAinsCT (p.Met729_Lys730delinsIleTer); c.2606+1G>A; c.2861_2862dupGC (p.Pro955AlafsTer74) | Frameshift / in-frame truncating / splice-site | 7 probands newly characterized; literature review spanning 78 families | Authors state congenital cataract and corpus callosum hypo/agenesis are pathognomonic for WARBM; all 7 had bilateral congenital cataracts and corpus callosum involvement; variant spectrum skewed toward LoF (~44% frameshift, ~36% nonsense); reported ancestry enrichment among reviewed cases: Egyptian 33.33%, Pakistani 22.72%, Turkish 18.18% (albayrak2021fromcataractto pages 3-4, albayrak2021fromcataractto pages 1-2, albayrak2021fromcataractto pages 4-6, albayrak2021fromcataractto pages 2-3) | Albayrak 2021, DOI: https://doi.org/10.1002/ajmg.a.62234 (albayrak2021fromcataractto pages 3-4, albayrak2021fromcataractto pages 1-2, albayrak2021fromcataractto pages 4-6, albayrak2021fromcataractto pages 2-3) |
| WARBM1 | RAB3GAP1 | Autosomal recessive | Large homozygous intragenic deletion spanning exons 4-15 (~50.4 kb; ~45% coding sequence) | Multi-exon deletion / structural loss-of-function | 2 affected siblings from consanguineous Kurdish-Armenian family | Typical WARBM1 phenotype with congenital cataracts, microphthalmia/microcornea, postnatal microcephaly, severe ID, pachygyria, corpus callosum dysgenesis/agenesis of splenium; osteopenia/osteoporosis highlighted as an additional feature (pickerminh2014largehomozygousrab3gap1 pages 3-5, pickerminh2014largehomozygousrab3gap1 pages 1-3) | Picker-Minh 2014, DOI: https://doi.org/10.1186/s13023-014-0113-9 (pickerminh2014largehomozygousrab3gap1 pages 3-5, pickerminh2014largehomozygousrab3gap1 pages 1-3) |
| WARBM3 | RAB18 | Autosomal recessive | Specific human HGVS variants not provided in retrieved context; causal loss-of-function mutations established | Loss-of-function | Multiple WARBM families in primary discovery/functional literature; exact variant list not available in retrieved context | Primary mechanism is direct RAB18 deficiency; affected children present at birth with congenital cataracts; Rab18-mutant mice recapitulate congenital nuclear cataracts, atonic pupils, hind-limb weakness, enlarged lipid droplets, and neuronal cytoskeletal disorganization (handley2015warburgmicrosyndrome pages 1-2, carpanini2014anovelmouse pages 1-2, carpanini2014anovelmouse pages 3-4) | Bem 2011, DOI: https://doi.org/10.1016/j.ajhg.2011.03.012; Handley 2015, DOI: https://doi.org/10.1098/rsob.150047; Carpanini 2014, DOI: https://doi.org/10.1242/dmm.015222 (handley2015warburgmicrosyndrome pages 1-2, carpanini2014anovelmouse pages 1-2, carpanini2014anovelmouse pages 3-4) |
| WARBM4 | TBC1D20 | Autosomal recessive | Specific human HGVS variants not provided in retrieved context; five distinct human loss-of-function mutations reported in 77 WARBM families screened | Loss-of-function | Human WARBM families plus blind sterile (bs) mouse model | TBC1D20 loss causes WARBM in humans and cataracts/male infertility in bs mice; shared cell phenotype includes aberrant lipid droplets/Golgi changes and defective autophagy flux, supporting a trafficking-autophagy disease mechanism (handley2015warburgmicrosyndrome pages 1-2, sidjanin2016tbc1d20mediatesautophagy pages 7-9, liegel2013lossoffunctionmutationsin pages 1-2) | Liegel 2013, DOI: https://doi.org/10.1016/j.ajhg.2013.10.011; Handley 2015, DOI: https://doi.org/10.1098/rsob.150047 (handley2015warburgmicrosyndrome pages 1-2, sidjanin2016tbc1d20mediatesautophagy pages 7-9, liegel2013lossoffunctionmutationsin pages 1-2) |
| WARBM2 | RAB3GAP2 | Autosomal recessive | Representative HGVS variants not available in retrieved context | Loss-of-function | Causality established as one of the four canonical WARBM genes; detailed variant examples not recovered in retrieved corpus | RAB3GAP2 encodes the noncatalytic subunit of the RAB3GAP complex; together with RAB3GAP1 it functions as a GEF for RAB18, so WARBM2 is interpreted mechanistically as indirect RAB18 dysregulation with clinically overlapping phenotype (pickerminh2014largehomozygousrab3gap1 pages 1-3, handley2015warburgmicrosyndrome pages 1-2) | Picker-Minh 2014, DOI: https://doi.org/10.1186/s13023-014-0113-9; Handley 2015, DOI: https://doi.org/10.1098/rsob.150047 (pickerminh2014largehomozygousrab3gap1 pages 1-3, handley2015warburgmicrosyndrome pages 1-2) |
Table: This table summarizes the Warburg Micro syndrome subtype–gene architecture and representative pathogenic variants that were explicitly supported by the retrieved literature. It is useful for quickly linking subtype, variant class, inheritance, and key genotype–phenotype observations, while clearly distinguishing genes with direct variant examples from genes supported mainly by causality studies in the retrieved context.
Key statistics from a 2021 WARBM1 cohort + literature review: RAB3GAP1 variants skew toward loss-of-function classes (~44% frameshift and ~36% nonsense), with additional splice and deletion classes, and suggested exon hotspotting (e.g., exon 15). (albayrak2021fromcataractto pages 4-6)
No WARBM-specific modifier genes or epigenetic drivers were identified in the retrieved corpus.
A chromosomal microarray was reported as normal in a prenatal WARBM1 diagnosis workup, supporting a single-gene etiology in that case. (lallar2023congenitalcataractand pages 2-3)
No non-genetic environmental or infectious causal contributors were supported as disease causes in the retrieved corpus. Prenatal differential workup includes infectious testing (TORCH) when cataracts are detected, but genetic causation is confirmed when variants are identified. (lallar2023congenitalcataractand pages 2-3)
A central mechanistic conclusion from a primary functional study is that WARBM can arise from direct RAB18 loss or indirect dysregulation through loss of the RAB3GAP complex or TBC1D20. (handley2015warburgmicrosyndrome pages 1-2)
Mechanistic definitions (key concepts): - RAB3GAP1/RAB3GAP2 form a complex that functions as a GEF for RAB18. (handley2015warburgmicrosyndrome pages 1-2) - TBC1D20 has RAB18 GAP activity in vitro and acts as a regulator essential for normal RAB18 cycling/dynamics and localization, including at the ER. (handley2015warburgmicrosyndrome pages 1-2, handley2015warburgmicrosyndrome pages 2-3)
Vesicular trafficking / ER organization / lipid droplets: Multiple primary sources link WARBM genes to ER structure and lipid droplet phenotypes; mutant cells show altered lipid droplet formation and size. (carpanini2014anovelmouse pages 1-2, liegel2013lossoffunctionmutationsin pages 1-2)
Autophagy: WARBM is discussed among multisystem autophagy-related disorders, and primary tissue/cell evidence supports disrupted autophagy flux in RAB3GAP1-associated disease. (dafsari2025anupdateon pages 7-9, noel2025biallelicnullrab3gap1 pages 14-15)
Ciliogenesis (TBC1D20): TBC1D20 loss links Rab11 vesicle accumulation, centrosomal actin remodeling, and enhanced ciliogenesis initiation; this provides a ciliopathy-adjacent mechanism potentially relevant to multisystem features. (zhai2025tbc1d20coordinatesvesicle pages 1-1, zhai2025tbc1d20coordinatesvesicle pages 1-2)
Biallelic loss-of-function in RAB3GAP1/RAB3GAP2/TBC1D20 → RAB18 activation/cycling defects and broader Rab-dependent trafficking defects → altered ER organization, lipid droplet homeostasis, autophagy/autolysosome maturation defects → neurodevelopmental disruption (neuronal migration/corticogenesis, axonal/cytoskeletal stability) and lens/optic pathway pathology → congenital cataracts, brain malformations, optic atrophy, severe neurodevelopmental disability and hypogonadism. This chain is consistent with mechanistic assertions and model-organism phenotypes in the retrieved primary literature. (handley2015warburgmicrosyndrome pages 1-2, noel2025biallelicnullrab3gap1 pages 14-15, carpanini2014anovelmouse pages 1-2, cheng2015enumutagenesisidentifies pages 1-2)
GO Biological Process (examples): - Autophagy (GO:0006914) - Vesicle-mediated transport (GO:0016192) - Endoplasmic reticulum organization (GO:0007029) - Lipid droplet organization (GO:0005811; note GO term names may differ—use GO lookup) - Cilium assembly (GO:0042384)
GO Cellular Component (examples): - Endoplasmic reticulum - Lipid droplet - Golgi apparatus - Centrosome
Cell Ontology (CL) suggestions (examples): - Neuron (cortical projection neuron) - Radial glial cell (for corticogenesis defects suggested by fetal brain evidence) - Lens fiber cell / lens epithelial cell
Primary organs/systems: eye (lens/optic nerve), brain (cerebral cortex, corpus callosum, cerebellum), endocrine/reproductive system (gonads; hypothalamic-pituitary-gonadal axis inferred from hypogonadism). (akkus2023firstclinicalreport pages 1-2, pickerminh2014largehomozygousrab3gap1 pages 1-3)
Subcellular compartments: ER and lipid droplets are repeatedly implicated; centrosomal trafficking and actin remodeling are implicated for TBC1D20-related pathways. (handley2015warburgmicrosyndrome pages 2-3, zhai2025tbc1d20coordinatesvesicle pages 1-1)
Onset: congenital/early (cataracts at birth; prenatal ultrasound detection reported at 18–25 weeks). (lallar2023congenitalcataractand pages 1-2, wang2025prenatalultrasounddiagnosis pages 7-9)
Progression: neurologic dysfunction can be progressive (spasticity; progressive hind-limb weakness in Rab18−/− mice) and ocular/optic nerve pathology may progress (optic nerve atrophy noted postoperatively by 1 year in one case). (wang2025prenatalultrasounddiagnosis pages 7-9, carpanini2014anovelmouse pages 3-4)
Autosomal recessive inheritance is consistent across subtype definitions, segregation in families, and cohort reports. (pickerminh2014largehomozygousrab3gap1 pages 1-3, akkus2023firstclinicalreport pages 3-4, albayrak2021fromcataractto pages 1-2)
The syndrome is repeatedly described as extremely rare and incidence is unknown in the retrieved corpus. (ullah2023exomesequencingidentifies pages 1-5, noel2025biallelicnullrab3gap1 pages 1-2)
Case aggregation statistic: One 2023 report notes RAB3GAP1 homozygous pathogenic variants reported in 67 families (reflecting literature compilation rather than prevalence). (akkus2023firstclinicalreport pages 1-2)
Gene contribution statistic: RAB3GAP1 is described as the most common cause, estimated at ~70% in one 2023 family report and 75% in a 2021 WARBM1-focused paper. (ullah2023exomesequencingidentifies pages 1-5, albayrak2021fromcataractto pages 1-2)
Geographic/ancestry patterns (from literature review): Egyptian 33.33%, Pakistani 22.72%, Turkish 18.18% of reviewed RAB3GAP1-associated families (reflecting publication-ascertainment rather than true population prevalence). (albayrak2021fromcataractto pages 3-4)
A practical clinical heuristic emphasized in a 2021 WARBM1 re-evaluation study is that congenital cataract plus corpus callosum hypo/agenesis is highly suggestive (“pathognomonic” in that paper) for WARBM in appropriate clinical context. (albayrak2021fromcataractto pages 1-2)
Prenatal: amniocentesis with microarray (to exclude CNVs) followed by phenotype-driven NGS or single-gene testing; confirm by parental Sanger sequencing; counseling includes recurrence risk (25%) and discussion of CVS and PGT-M. (lallar2023congenitalcataractand pages 2-3)
Postnatal: WES pipelines and/or NGS panels; variant filtering against population databases (gnomAD/1000 Genomes) and ACMG classification are used in recent reports. (ullah2023exomesequencingidentifies pages 1-5)
Prenatal cataract workups explicitly consider infections and chromosomal/single-gene syndromes (e.g., TORCH; other syndromic causes of cataract and brain anomalies). (lallar2023congenitalcataractand pages 1-2, lallar2023congenitalcataractand pages 2-3)
Formal survival statistics and life expectancy were not identified in the retrieved corpus. Available evidence indicates a severe neurodevelopmental course with profound disability and limited communication in many patients. (akkus2023firstclinicalreport pages 1-2, albayrak2021fromcataractto pages 2-3)
Visual outcomes can be poor even after early cataract surgery if optic nerve atrophy and broader neuro-ophthalmic disease are present (illustrated by a prenatally detected RAB3GAP1 WARBM case with lensectomy at 3 months and poor vision at age 4). (wang2025prenatalultrasounddiagnosis pages 7-9)
No disease-modifying pharmacologic therapies were identified in the retrieved corpus.
Cataract surgery: performed in infancy in case reports/cohorts; early detection/intervention is emphasized as important for visual development in congenital cataract generally, but WARBM-specific outcomes depend on associated optic nerve/brain pathology. (wang2025prenatalultrasounddiagnosis pages 7-9, bell2020congenitalcataracta pages 1-2)
Supportive care: Multidisciplinary care is a standard implementation for congenital cataracts with systemic associations (ophthalmology, pediatrics, genetics, counseling, and educational/visual supports). For WARBM, additional supportive needs include neurodevelopmental therapies, orthopedic management for spasticity/contractures, and urology/endocrinology for hypogonadism/cryptorchidism. (bell2020congenitalcataracta pages 1-2, albayrak2021fromcataractto pages 2-3)
MAXO suggestions (examples): - Cataract extraction (MAXO term to be selected) - Vision rehabilitation (MAXO) - Genetic counseling (MAXO) - Physical therapy / occupational therapy / speech therapy (MAXO)
No WARBM-targeted interventional trials were identified in the retrieved evidence. A large observational rare disease registry/natural history study exists (NCT01793168), which can support case capture and outcomes research rather than testing a disease-specific intervention. (wang2025prenatalultrasounddiagnosis pages 6-6)
Primary prevention is not applicable in the typical sense for a monogenic AR disease, but reproductive prevention strategies are directly supported in prenatal diagnostic literature: - Carrier testing of parents and family members - Prenatal diagnosis (CVS/amniocentesis) with targeted sequencing - Preimplantation genetic testing for monogenic disease (PGT-M) discussed as an option in at-risk couples These were explicitly highlighted in a prenatal WARBM1 diagnosis report. (lallar2023congenitalcataractand pages 2-3)
Naturally occurring RAB3GAP1 loss-of-function causes a WARBM-like syndrome (POANV) in dogs: - Alaskan Huskies: exon 7 SINE insertion (recessive) associated with polyneuropathy, ocular abnormalities, neuronal vacuolation; euthanasia at 8–16 months; absent from 541 controls. (wiedmer2016arab3gap1sine pages 1-5) - Black Russian Terriers: RAB3GAP1 c.743delC associated with polyneuropathy, ocular defects, and neuronal vacuolation. (mhlangamutangadura2016amutationin pages 1-2)
These provide comparative biology and translational modeling opportunities. (wiedmer2016arab3gap1sine pages 1-5, mhlangamutangadura2016amutationin pages 1-2)
Mouse (Rab18): Rab18−/− models recapitulate congenital cataracts/atonic pupils and neurologic dysfunction; cellular phenotypes include enlarged lipid droplets and neuronal cytoskeletal disruption; an ENU-derived Rab18 deletion model shows sensory axon degeneration including optic nerve degeneration, aligning with optic atrophy in humans. (carpanini2014anovelmouse pages 3-4, cheng2015enumutagenesisidentifies pages 1-2, carpanini2014anovelmouse pages 2-3)
Mouse (Tbc1d20, blind sterile/bs): bs mice exhibit cataracts and male infertility; cellular evidence supports disrupted autophagy flux with progressive cataractogenesis beginning in late embryogenesis (E17.5) and worsening postnatally. (sidjanin2016tbc1d20mediatesautophagy pages 7-9, liegel2013lossoffunctionmutationsin pages 1-2)
Mechanistic utility: These models support interrogation of Rab-regulated membrane trafficking, autophagy, lipid droplet biology, and neurodevelopmental processes relevant to WARBM. (handley2015warburgmicrosyndrome pages 1-2, carpanini2014anovelmouse pages 1-2)
Picker-Minh et al. provide a consolidated phenotype table (Table 1) and neuroimaging/phenotype figure (Figure 1) supporting core neuroimaging abnormalities and osteopenia/osteoporosis as an additional manifestation in WARBM1. (pickerminh2014largehomozygousrab3gap1 media f5f15d26, pickerminh2014largehomozygousrab3gap1 media 30474c79, pickerminh2014largehomozygousrab3gap1 media cfa8e10c, pickerminh2014largehomozygousrab3gap1 media e76762b9)
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