Glycogen storage disease type X (GSD X, muscle phosphoglycerate mutase deficiency) is a rare autosomal recessive metabolic myopathy caused by biallelic PGAM2 variants. PGAM2 encodes the muscle (M) subunit of phosphoglycerate mutase, the glycolytic enzyme that converts 3-phosphoglycerate to 2-phosphoglycerate; adult skeletal muscle relies almost exclusively on the MM homodimer, so loss of the M subunit leaves only a small residual activity carried by the brain (BB) isoenzyme and partially blocks terminal glycolysis in muscle. Patients are typically asymptomatic at rest and during sustained moderate exercise, but brief strenuous efforts trigger exercise intolerance, myalgia, cramps or contractures, and episodes of rhabdomyolysis with myoglobinuria. Serum creatine kinase is often raised between episodes, and muscle biopsy frequently shows tubular aggregates, a feature that distinguishes GSD X from the other glycogenoses. Most reported patients are African American and carry the recurrent p.Trp78Ter allele, but the disorder has since been described in several other populations, and some heterozygous carriers are symptomatic.
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name: Glycogen Storage Disease Due To Phosphoglycerate Mutase Deficiency
creation_date: "2026-09-28T20:00:00Z"
description: >-
Glycogen storage disease type X (GSD X, muscle phosphoglycerate mutase
deficiency) is a rare autosomal recessive metabolic myopathy caused by biallelic
PGAM2 variants. PGAM2 encodes the muscle (M) subunit of phosphoglycerate mutase,
the glycolytic enzyme that converts 3-phosphoglycerate to 2-phosphoglycerate;
adult skeletal muscle relies almost exclusively on the MM homodimer, so loss of
the M subunit leaves only a small residual activity carried by the brain (BB)
isoenzyme and partially blocks terminal glycolysis in muscle. Patients are
typically asymptomatic at rest and during sustained moderate exercise, but brief
strenuous efforts trigger exercise intolerance, myalgia, cramps or contractures,
and episodes of rhabdomyolysis with myoglobinuria. Serum creatine kinase is often
raised between episodes, and muscle biopsy frequently shows tubular aggregates,
a feature that distinguishes GSD X from the other glycogenoses. Most reported
patients are African American and carry the recurrent p.Trp78Ter allele, but the
disorder has since been described in several other populations, and some
heterozygous carriers are symptomatic.
synonyms:
- glycogen storage disease X
- glycogen storage disease type X
- glycogen storage disease type 10
- GSD X
- GSDX
- GSD10
- GSD type 10
- glycogenosis type X
- muscle phosphoglycerate mutase deficiency
- phosphoglycerate mutase deficiency
- PGAM deficiency
- PGAMM deficiency
- myopathy due to phosphoglycerate mutase deficiency
- glycogenosis due to phosphoglycerate mutase deficiency
- GSD due to phosphoglycerate mutase deficiency
- PGAM2 glycogen storage disease
- glycogen storage disease caused by mutation in PGAM2
category: Mendelian
disease_term:
preferred_term: glycogen storage disease due to phosphoglycerate mutase deficiency
term:
id: MONDO:0009865
label: glycogen storage disease due to phosphoglycerate mutase deficiency
mappings:
mondo_mappings:
- term:
id: MONDO:0009865
label: glycogen storage disease due to phosphoglycerate mutase deficiency
mapping_predicate: skos:exactMatch
mapping_source: MONDO
parents:
- disorder of glycogen metabolism
- disorder of glycolysis
inheritance:
- name: Autosomal recessive inheritance
inheritance_term:
preferred_term: Autosomal recessive inheritance
term:
id: HP:0000007
label: Autosomal recessive inheritance
description: >-
Affected individuals are homozygous or compound heterozygous for PGAM2 variants,
and obligate carrier parents show intermediate muscle enzyme activity. Some
heterozygous carriers are nonetheless symptomatic (manifesting heterozygotes),
with exercise intolerance and cramps but a milder course.
evidence:
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Intermediate PGAM activities (39 and 50% of normal) were found in muscle
biopsies from the patient's asymptomatic parents.
explanation: >-
Half-normal enzyme activity in both asymptomatic parents of an affected
proband is the carrier pattern expected of recessive transmission.
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
suggest autosomal-recessive transmission of the trait
explanation: >-
The authors' own conclusion on the mode of inheritance from the family study.
- reference: PMID:16157752
reference_title: Effect of fuels on exercise capacity in muscle phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle phosphoglycerate mutase deficiency (PGAMD) is a rare, recessively
inherited metabolic myopathy that affects one of the last steps of glycolysis.
explanation: >-
States recessive inheritance directly for the disorder.
- reference: PMID:10545043
reference_title: Manifesting heterozygotes in a Japanese family with a novel mutation in the muscle-specific phosphoglycerate mutase (PGAM-M) gene.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Two heterozygous family members for the G97D mutation presented with
exercise intolerance and muscle cramps.
explanation: >-
Documents symptomatic heterozygous carriers, the caveat recorded in this
block's description.
prevalence:
- population: Global published literature
measure_type: CASES_IN_LITERATURE
prevalence_class: ULTRA_RARE
notes: >-
A time-bounded count of reported patients (14 by 2011-2013), not a population
prevalence estimate. Further patients have been reported since through exome
and gene-panel sequencing of rhabdomyolysis and tubular-aggregate myopathy
cohorts, and one report argues the disorder may be underdiagnosed.
evidence:
- reference: PMID:23169535
reference_title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
PGAM deficiency has been reported in 14 patients, 9 of whom were of
African-American ethnicity, and in 5 (36%) tubular aggregates were seen on
muscle biopsy.
explanation: >-
Direct published patient count as of 2013.
- reference: PMID:19783439
reference_title: Unusual presentation of phosphoglycerate mutase deficiency due to two different mutations in PGAM-M gene.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
suggests that the frequency of this metabolic myopathy may be underestimated
explanation: >-
Supports the note that the literature count is likely an underestimate.
pathophysiology:
- name: Muscle Phosphoglycerate Mutase Deficiency
biological_scale: MOLECULAR
description: >-
Biallelic PGAM2 variants (nonsense, frameshift and missense) abolish or severely
reduce the M subunit of phosphoglycerate mutase. Because normal adult muscle
derives about 95% of its PGAM activity from the MM homodimer, residual activity
in patient muscle is typically 3-10% of normal and is carried by the BB
isoenzyme. Tissues that rely on the BB isoenzyme, including cultured aneural
muscle cells, are spared, which explains why the disease is confined to
skeletal muscle.
genes:
- preferred_term: PGAM2
term:
id: hgnc:8889
label: PGAM2
molecular_functions:
- preferred_term: phosphoglycerate mutase activity
modifier: DECREASED
term:
id: GO:0004619
label: phosphoglycerate mutase activity
cell_types:
- preferred_term: skeletal muscle fiber
term:
id: CL:0008002
label: skeletal muscle fiber
evidence:
- reference: PMID:8447317
reference_title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
The glycolytic enzyme phosphoglycerate mutase (PGAM) is a dimer, and mature
human skeletal muscle contains almost exclusively the MM form of the enzyme,
PGAM-M.
explanation: >-
Establishes that muscle depends on the M-subunit homodimer, so a PGAM2 defect
is not buffered in muscle by another isoform.
- reference: PMID:22106711
reference_title: Progress and problems in muscle glycogenoses.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
Normal adult human muscle contains predominantly the MM homodimer, which
accounts for about 95% of the total activity.
explanation: >-
Review statement quantifying the M-subunit contribution to muscle PGAM
activity.
- reference: PMID:6262916
reference_title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Electrophoretic, heat lability, and mercury inhibition studies showed that the
small residual activity in the patient's muscle was represented by the brain
(BB) isoenzyme of phosphoglycerate mutase, suggesting a genetic defect of the M
subunit which predominates in normal muscle.
explanation: >-
Index-case demonstration that the residual activity is BB isoenzyme, locating
the defect in the M subunit.
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle PGAM activities were markedly decreased (3% of the normal mean) and
molecular genetic studies showed that both patients were homozygous for a
described missense mutation (W78X).
explanation: >-
Links the recurrent PGAM2 allele to a severe loss of muscle enzyme activity.
W78X is a nonsense (stop-gain) allele although the abstract calls it
missense.
- reference: PMID:8006681
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency in the first Caucasian patient: biochemistry, muscle culture and 31P-MR spectroscopy."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
In contrast to the marked decrease of PGAM activity observed in muscle biopsy,
total enzyme activity in the patient's aneural muscle culture was normal, being
represented exclusively by BB isoenzyme.
explanation: >-
Patient-derived cultured muscle, which expresses the BB isoenzyme, has normal
total activity, showing why the defect is expressed only in mature muscle.
downstream:
- target: Partial Terminal Glycolytic Block
description: >-
Loss of PGAM activity interrupts glycolysis at the 3-phosphoglycerate to
2-phosphoglycerate step. The block is partial because of the residual BB
isoenzyme activity.
causal_link_type: DIRECT
evidence:
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
Studies of anaerobic glycolysis in vitro showed decreased lactate production
with glycogen, and with all hexose phosphate glycolytic intermediates, which
was corrected by addition of purified PGAM to the reaction mixtures.
explanation: >-
Adding back purified PGAM restores glycolytic lactate output in patient
muscle extract, showing that the enzyme deficit is what limits glycolytic
flux.
- name: Partial Terminal Glycolytic Block
biological_scale: CELLULAR
description: >-
Reduced glycolytic flux distal to phosphofructokinase in skeletal muscle, with
accumulation of upstream sugar phosphates during glycolytic exercise and mild
storage of glycogen. Because the residual BB isoenzyme activity is not
negligible, the block is partial: sugar phosphates are cleared faster than in
complete glycolytic blocks, and exercise lactate production is blunted in most
but not all patients.
cell_types:
- preferred_term: skeletal muscle fiber
term:
id: CL:0008002
label: skeletal muscle fiber
biological_processes:
- preferred_term: glycolytic process
modifier: DECREASED
term:
id: GO:0006096
label: glycolytic process
evidence:
- reference: PMID:3034220
reference_title: Phosphorus magnetic resonance spectroscopy of partially blocked muscle glycolysis. An in vivo study of phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Abnormal accumulation of sugar phosphates does occur, even when 6% enzyme
activity is present.
explanation: >-
In vivo 31P-MRS shows the metabolic signature of a glycolytic block in
patient muscle despite residual enzyme activity.
- reference: PMID:3034220
reference_title: Phosphorus magnetic resonance spectroscopy of partially blocked muscle glycolysis. An in vivo study of phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
The elimination of sugar phosphates was faster than in complete glycolytic
blocks.
explanation: >-
Supports describing the block as partial rather than complete.
- reference: PMID:6283419
reference_title: Muscle phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: IN_VITRO
snippet: >-
Studies of anaerobic glycolysis in vitro showed decrease lactate formation
with glycogen and with all hexosephosphate glycolytic intermediates,
suggesting a defect below the phosphofructokinase reaction.
explanation: >-
Locates the glycolytic defect distal to phosphofructokinase in the index
patient's muscle.
downstream:
- target: Exertional Muscle Energy Failure
description: >-
The partial block limits glycolytic ATP supply when demand is highest, during
brief intense (glycolytic) exercise; oxidative metabolism and sustained
moderate exercise are comparatively preserved.
causal_link_type: DIRECT
evidence:
- reference: PMID:8006681
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency in the first Caucasian patient: biochemistry, muscle culture and 31P-MR spectroscopy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle 31P-MR spectroscopy showed accumulation of phosphomonoesters only on
fast "glycolytic" exercise.
explanation: >-
The metabolic consequence of the block is exposed only by glycolytic
exercise, which is when the energy shortfall arises.
- target: Increased muscle glycogen content
description: >-
Impaired glycolytic disposal of glycogen-derived carbon leads to mild glycogen
storage in muscle.
causal_link_type: DIRECT
- target: Blunted lactate response to forearm exercise
description: >-
Reduced flux through the lower glycolytic pathway lowers lactate output from
exercising muscle in most patients.
causal_link_type: DIRECT
- name: Exertional Muscle Energy Failure
biological_scale: CELLULAR
description: >-
An ATP shortfall in glycolytic (type 2) muscle fibres during brief, strenuous
effort. Patients are typically asymptomatic otherwise; cycle exercise and
oxidative capacity are virtually normal, and unlike McArdle disease there is no
second-wind phenomenon. This is the metabolic event that produces exercise
intolerance and myalgia, and in more severe episodes proceeds to contracture
and fibre necrosis.
cell_types:
- preferred_term: fast muscle cell
term:
id: CL:0000190
label: fast muscle cell
biological_processes:
- preferred_term: glycolytic ATP biosynthesis
modifier: DECREASED
term:
id: GO:0006754
label: ATP biosynthetic process
evidence:
- reference: PMID:23169535
reference_title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Clinically, patients with PGAM deficiency are asymptomatic, except when they
engage in brief, strenuous efforts, which may trigger myalgias, cramps, muscle
necrosis, and myoglobinuria.
explanation: >-
States that symptoms arise specifically from brief strenuous effort, the
condition under which the energy shortfall occurs.
- reference: PMID:16157752
reference_title: Effect of fuels on exercise capacity in muscle phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
in patients with PGAMD, cycle exercise and oxidative capacity are virtually
normal, a second wind does not occur, and lipid and lactate supplements do
not improve exercise capacity.
explanation: >-
Controlled exercise physiology in two patients showing that the energy
failure is confined to high-intensity effort and is not a general oxidative
deficit.
- reference: PMID:2987758
reference_title: "Physiologic assessment of phosphoglycerate mutase deficiency: incremental exercise test."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
In contrast to the patients with phosphorylase deficiency, the PGAM-deficient
patient achieved near-normal levels of maximal exercise and produced a normal
peak lactate after exercise.
explanation: >-
An independent patient with near-normal incremental exercise capacity,
consistent with an energy deficit restricted to brief intense effort.
downstream:
- target: Exercise intolerance
description: Glycolytic ATP shortfall limits brief strenuous effort.
causal_link_type: DIRECT
- target: Exercise-induced myalgia
description: Exertional energy failure produces muscle pain during and after effort.
causal_link_type: DIRECT
- target: Sarcoplasmic Reticulum Calcium Handling Imbalance
description: >-
Inferred step, proposed from a single patient's findings and not demonstrated
directly: an exertional energy deficit is taken to impair ATP-dependent
calcium re-uptake by the sarcoplasmic reticulum relative to calcium release.
causal_link_type: UNKNOWN
- target: Myofiber Necrosis and Rhabdomyolysis
description: >-
When the energy shortfall is severe enough, the muscle fibre breaks down.
causal_link_type: DIRECT
evidence:
- reference: PMID:23169535
reference_title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Clinically, patients with PGAM deficiency are asymptomatic, except when they
engage in brief, strenuous efforts, which may trigger myalgias, cramps,
muscle necrosis, and myoglobinuria.
explanation: >-
Names muscle necrosis as a consequence of the same brief strenuous efforts
that expose the energy deficit.
- name: Sarcoplasmic Reticulum Calcium Handling Imbalance
biological_scale: CELLULAR
description: >-
Proposed mechanism for the cramps and contractures of GSD X, and possibly for
its characteristic tubular aggregates, which are stacks of tubules derived
from the sarcoplasmic reticulum. In one patient, muscle calcium content and
Ca2+-ATPase activity were increased, and dantrolene, which inhibits calcium
release from the sarcoplasmic reticulum, abolished exertional contractures.
The authors inferred that cramps result from calcium release that outstrips
re-uptake capacity. The trigger for tubular aggregate formation in GSD X is
unknown.
cell_types:
- preferred_term: skeletal muscle fiber
term:
id: CL:0008002
label: skeletal muscle fiber
biological_processes:
- preferred_term: release of sequestered calcium ion into cytosol by sarcoplasmic reticulum
term:
id: GO:0014808
label: release of sequestered calcium ion into cytosol by sarcoplasmic reticulum
evidence:
- reference: PMID:10443898
reference_title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
A patient with muscle phosphoglycerate mutase deficiency (PGAMD) and
exercise-induced muscle cramps had tubular aggregates in muscle and increased
muscle Ca2+-adenosine triphosphatase and calcium content.
explanation: >-
Measured calcium-handling abnormalities in PGAM-deficient muscle, together
with tubular aggregates. A single patient.
- reference: PMID:10443898
reference_title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
These findings suggest that cramps in muscle PGAMD are caused by a high
calcium release from the sarcoplasmic reticulum relative to calcium re-uptake
capacity.
explanation: >-
The authors' mechanistic interpretation; stated as a suggestion, which is why
this node is described as proposed.
- reference: PMID:19273759
reference_title: Muscle phosphoglycerate mutase deficiency revisited.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
We found that glycogen storage disease type X is not confined to the African
American population, is often associated with sarcoplasmic reticulum (SR)
proliferation, and is genetically heterogeneous.
explanation: >-
Places sarcoplasmic reticulum proliferation as a recurrent feature of the
disorder.
downstream:
- target: Exercise-induced muscle cramps
description: >-
Calcium release exceeding re-uptake is proposed to produce the exertional
cramps and contractures.
causal_link_type: UNKNOWN
evidence:
- reference: PMID:10443898
reference_title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
supports: SUPPORT
directness: INDIRECT
evidence_source: HUMAN_CLINICAL
snippet: >-
On dantrolene treatment, the patient became asymptomatic, and the ischemic
test was performed without contracture.
explanation: >-
Blocking sarcoplasmic reticulum calcium release abolished the contracture,
a pharmacological test of this edge in one patient.
- target: Muscle fiber tubular aggregates
description: >-
Tubular aggregates derive from the sarcoplasmic reticulum. Their association
with calcium-handling changes in PGAM-deficient muscle is documented, but the
specific trigger in GSD X remains unknown.
causal_link_type: UNKNOWN
- name: Myofiber Necrosis and Rhabdomyolysis
biological_scale: TISSUE
description: >-
Breakdown of muscle fibres with release of creatine kinase and myoglobin into
the circulation. This structural consequence is separated from the metabolic
event because the two are dissociable: some patients have exertional symptoms
without any pigmenturia, and one was ascertained with asymptomatic
hyperCKemia.
cell_types:
- preferred_term: skeletal muscle fiber
term:
id: CL:0008002
label: skeletal muscle fiber
evidence:
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
CK was mildly elevated at rest and over 20,000 U/L during her episode of
rhabdomyolysis.
explanation: >-
Documents a rhabdomyolysis episode with marked CK release in a genetically
confirmed patient.
- reference: PMID:19273759
reference_title: Muscle phosphoglycerate mutase deficiency revisited.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
a 65-year-old Italian man who had exercise intolerance and myalgia but no
pigmenturia
explanation: >-
A confirmed patient with the metabolic symptoms but no pigmenturia, which is
the dissociation this node is separated to represent.
downstream:
- target: Exercise-induced rhabdomyolysis
description: Fibre breakdown triggered by strenuous exercise.
causal_link_type: DIRECT
- target: Exercise-induced myoglobinuria
description: Myoglobin released from necrotic fibres is excreted, producing pigmenturia.
causal_link_type: DIRECT
- target: Elevated circulating creatine kinase activity
description: >-
Fibre injury releases creatine kinase, which peaks during rhabdomyolysis and
is often mildly raised between episodes.
causal_link_type: DIRECT
phenotypes:
- name: Exercise intolerance
description: >-
Intolerance of brief strenuous exercise, the presenting feature in most patients,
typically beginning in childhood or adolescence.
phenotype_term:
preferred_term: Exercise intolerance
term:
id: HP:0003546
label: Exercise intolerance
evidence:
- reference: PMID:8447317
reference_title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
All presented with exercise intolerance, cramps, and myoglobinuria.
explanation: >-
Exercise intolerance in each of the first four reported patients.
- reference: PMID:6262916
reference_title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle phosphoglycerate mutase activity was decreased (5.7 percent of the
lowest control value) in a 52-year-old man with intolerance for strenuous
exercise and recurrent pigmenturia since adolescence.
explanation: >-
Exercise intolerance beginning in adolescence in the index patient.
- reference: PMID:39463617
reference_title: "Recurrent Myalgia, Dark Urine, and Exercise Intolerance: Glycogen Storage Disease Type X Diagnosed Through Gene Sequencing Panel."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
This is a case of an 11-year-old male who presents with recurrent myalgia,
dark discolored urine, and exercise intolerance for the past year.
explanation: >-
A childhood-onset presentation with exercise intolerance.
- name: Exercise-induced myalgia
description: Muscle pain provoked by brief strenuous effort.
phenotype_term:
preferred_term: Exercise-induced myalgia
term:
id: HP:0003738
label: Exercise-induced myalgia
evidence:
- reference: PMID:16157752
reference_title: Effect of fuels on exercise capacity in muscle phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Two unrelated men (21 and 26 years old) with PGAMD who since their teens had
experienced muscle cramps, muscle pain, and episodes of myoglobinuria
provoked by brief vigorous exercise
explanation: >-
Exertional muscle pain in two unrelated patients.
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
A 52-year-old African-American woman presented with exertional muscle
contractures, myalgias, and weakness since childhood including an episode of
rhabdomyolysis.
explanation: >-
Exertional myalgia since childhood in a compound heterozygous patient.
- name: Exercise-induced muscle cramps
description: >-
Exertional cramps and painful contractures. Contractures can be reproduced by
ischaemic forearm exercise testing.
phenotype_term:
preferred_term: Exercise-induced muscle cramps
term:
id: HP:0003710
label: Exercise-induced muscle cramps
evidence:
- reference: PMID:8447317
reference_title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
All presented with exercise intolerance, cramps, and myoglobinuria.
explanation: Cramps in each of the first four reported patients.
- reference: PMID:10443898
reference_title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Two ischemic forearm exercise tests induced contractures in the patient.
explanation: >-
Exertional contracture reproduced under test conditions.
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Phosphoglycerate mutase enzyme deficiency in muscle causes a metabolic myopathy
(glycogen storage disease X) characterized by exertional muscle contractures,
weakness, hyperCKemia, and myoglobinuria.
explanation: >-
Names exertional contractures as a defining feature of the disorder.
- name: Exercise-induced rhabdomyolysis
description: >-
Episodes of exertional rhabdomyolysis, in which CK can exceed 20,000 U/L.
phenotype_term:
preferred_term: Exercise-induced rhabdomyolysis
term:
id: HP:0009045
label: Exercise-induced rhabdomyolysis
temporality: RECURRENT
evidence:
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
CK was mildly elevated at rest and over 20,000 U/L during her episode of
rhabdomyolysis.
explanation: Documents an episode of rhabdomyolysis.
- reference: PMID:28779239
reference_title: Exome sequencing in Jewish and Arab patients with rhabdomyolysis reveals single-gene etiology in 43% of cases.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: BACKGROUND
snippet: >-
Deficiency of the terminal glycolysis enzyme, muscle phosphoglycerate mutase
(PGAM), causes Glycogenosis type X, a metabolic myopathy characterized by
exercise-induced cramps, rhabdomyolysis, and Myoglobinuria
explanation: >-
Rhabdomyolysis named as a characteristic feature of the disorder, in the
discussion of a PGAM2 genotype found among families ascertained for
rhabdomyolysis.
- name: Exercise-induced myoglobinuria
description: >-
Recurrent pigmenturia after strenuous exercise. It is common but not universal:
some confirmed patients have never had pigmenturia.
phenotype_term:
preferred_term: Exercise-induced myoglobinuria
term:
id: HP:0008305
label: Exercise-induced myoglobinuria
temporality: RECURRENT
evidence:
- reference: PMID:6262916
reference_title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle phosphoglycerate mutase activity was decreased (5.7 percent of the
lowest control value) in a 52-year-old man with intolerance for strenuous
exercise and recurrent pigmenturia since adolescence.
explanation: Recurrent pigmenturia in the index patient.
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle phosphoglycerate mutase (PGAM) activity was markedly decreased (6% of
the normal mean) in a 17-year-old girl with recurrent myoglobinuria after
intense exercise.
explanation: Exercise-induced recurrent myoglobinuria in the second reported patient.
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
We report two patients in whom phosphoglycerate mutase (PGAM) deficiency was
associated with the triad of exercise-induced cramps, recurrent myoglobinuria,
and tubular aggregates in the muscle biopsy.
explanation: Recurrent myoglobinuria in two further W78X homozygotes.
- name: Elevated circulating creatine kinase activity
description: >-
Serum CK rises steeply during rhabdomyolysis and is often mildly raised between
episodes. Persistent hyperCKemia can be the presenting finding in otherwise
asymptomatic individuals.
phenotype_term:
preferred_term: Elevated circulating creatine kinase activity
term:
id: HP:0003236
label: Elevated circulating creatine kinase activity
evidence:
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Serum creatine kinase (CK) levels were elevated between attacks of
myoglobinuria.
explanation: Interictal CK elevation in two patients.
- reference: PMID:23169535
reference_title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
We report an African-American patient from Panama with partial deficiency of
PGAM who presented with asymptomatic elevation of creatine kinase levels and
tubular aggregates on muscle biopsy.
explanation: >-
HyperCKemia as the presenting finding in an initially asymptomatic patient,
who was heterozygous for the codon 78 variant.
- reference: PMID:30397902
reference_title: Myopathies Related to Glycogen Metabolism Disorders.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
The serum creatine kinase (CK) is often elevated in the myopathic forms and in
PYGM deficiency, but can be normal and increase only with rhabdomyolysis
(PGAM2, PFK, ENO3).
explanation: >-
Class-level review noting that in PGAM2 deficiency CK can also be normal
between episodes, which is why this phenotype carries no frequency.
- name: Muscle fiber tubular aggregates
description: >-
Subsarcolemmal tubular aggregates in type 2 fibres, seen in about a third of
reported biopsies. They have not been reported in the other glycogenoses, so
the combination of exercise-induced cramps, recurrent myoglobinuria and tubular
aggregates is highly suggestive of PGAM deficiency.
phenotype_term:
preferred_term: Muscle fiber tubular aggregates
term:
id: HP:0100301
label: Muscle fiber tubular inclusions
frequency: FREQUENT
evidence:
- reference: PMID:23169535
reference_title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
PGAM deficiency has been reported in 14 patients, 9 of whom were of
African-American ethnicity, and in 5 (36%) tubular aggregates were seen on
muscle biopsy.
explanation: >-
5 of 14 reported patients (36%) had tubular aggregates, which places the
feature in the FREQUENT (30-79%) band.
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle biopsies showed subsarcolemmal tubular aggregates in type 2 fibers.
explanation: Localises the aggregates to type 2 fibres.
- reference: PMID:19273759
reference_title: Muscle phosphoglycerate mutase deficiency revisited.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Pathological studies of muscle showed mild glycogen accumulation but
prominent tubular aggregates in both patients.
explanation: Tubular aggregates in two patients of non-African ancestry.
- reference: PMID:22106711
reference_title: Progress and problems in muscle glycogenoses.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
The most striking peculiarity of GSD X is its common association with tubular
aggregates (TAs), which were seen in the muscle biopsies of 5 patients (36%)
whereas they have never been reported in other glycogenoses.
explanation: >-
Review establishing tubular aggregates as the distinguishing pathological
feature of GSD X among the glycogenoses.
- name: Increased muscle glycogen content
description: >-
Mild increase in muscle glycogen on biopsy, up to about twice normal. It is not
a consistent finding: the 1981 report of the index patient found normal
glycogen concentration, and some biopsies are histologically normal.
phenotype_term:
preferred_term: Increased muscle glycogen content
term:
id: HP:0009051
label: Increased muscle glycogen content
evidence:
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle biopsy showed increased PAS stain; glycogen concentration was twice
normal.
explanation: Quantified glycogen excess in the second reported patient.
- reference: PMID:19273759
reference_title: Muscle phosphoglycerate mutase deficiency revisited.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Pathological studies of muscle showed mild glycogen accumulation but
prominent tubular aggregates in both patients.
explanation: Mild glycogen accumulation in two further patients.
- reference: PMID:6262916
reference_title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
supports: REFUTE
evidence_source: HUMAN_CLINICAL
snippet: >-
All of the other enzymes of glycolysis had normal activities, and glycogen
concentration was normal.
explanation: >-
The 1981 report of the index patient found normal glycogen concentration, so
glycogen excess is not invariant. The 1982 full report of the same patient
(PMID:6283419) describes a mild increase, so the two reports disagree.
- name: Blunted lactate response to forearm exercise
description: >-
A subnormal rise in venous lactate on forearm exercise testing, found in most
tested patients. The response is not a reliable exclusion test: several
confirmed patients produced normal lactate, on either forearm or whole-body
exercise.
phenotype_term:
preferred_term: Blunted lactate rise on forearm exercise test
term:
id: HP:6000526
label: Failure to elevate lactate upon ischemic exercise test
evidence:
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Forearm ischemic exercise tests produced subnormal increases of venous
lactate.
explanation: Blunted ischaemic lactate response in two patients.
- reference: PMID:6283419
reference_title: Muscle phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
The rise of venous lactate after forearm ischemic exercise was abnormally
low.
explanation: Blunted response in the index patient.
- reference: PMID:30397902
reference_title: Myopathies Related to Glycogen Metabolism Disorders.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
Although most patients show an attenuated lactate rise with forearm exercise
testing, some show a normal rise
explanation: >-
Review summary that the finding is common but not invariant.
- reference: PMID:30310767
reference_title: Novel heterozygous mutations in the PGAM2 gene with negative exercise testing.
supports: REFUTE
evidence_source: HUMAN_CLINICAL
snippet: >-
We report here a patient diagnosed with GSDX at 52 years of age with a normal
increase in post-exercise lactate with both anaerobic and aerobic exercise.
explanation: >-
A confirmed patient with a normal lactate response, showing the phenotype is
not universal.
biochemical:
- name: Muscle phosphoglycerate mutase activity
notes: >-
Enzyme assay on a skeletal muscle biopsy. Reported residual activities in
patients with biallelic PGAM2 variants are about 3-10% of normal, with the
residual activity carried by the BB isoenzyme; obligate carriers show
intermediate (about 40-50%) activity.
evidence:
- reference: PMID:6262916
reference_title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle phosphoglycerate mutase activity was decreased (5.7 percent of the
lowest control value) in a 52-year-old man with intolerance for strenuous
exercise and recurrent pigmenturia since adolescence.
explanation: Residual activity in the index patient.
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Phosphoglycerate mutase activity was 8% of the reference value.
explanation: Residual activity in a compound heterozygous patient.
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle PGAM activities were markedly decreased (3% of the normal mean) and
molecular genetic studies showed that both patients were homozygous for a
described missense mutation (W78X).
explanation: Residual activity in W78X homozygotes.
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Intermediate PGAM activities (39 and 50% of normal) were found in muscle
biopsies from the patient's asymptomatic parents.
explanation: Carrier-range activity in obligate heterozygotes.
genetic:
- name: PGAM2 pathogenic variants
gene_term:
preferred_term: PGAM2
term:
id: hgnc:8889
label: PGAM2
association: Causative
notes: >-
Reported variants include the recurrent nonsense allele p.Trp78Ter (c.233G>A),
found at least heterozygously in the African American patients studied
(suggesting a founder effect), and p.Glu89Ala, p.Arg90Trp, p.Gly97Asp, c.278G>A,
p.Tyr142Ter, p.Gly178Alafs*31, p.Met230Hisfs*6, p.Gly213Arg and p.Arg10Gln, among
others. Most patients are homozygous or compound heterozygous; heterozygous
carriers of p.Gly97Asp and of the codon 78 variant have been symptomatic or had
partial enzyme deficiency.
evidence:
- reference: PMID:8447317
reference_title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Three patients were homozygous for an identical G-to-A transition converting
an encoded Trp to an in-frame stop codon (codon 78).
explanation: The recurrent W78X allele, homozygous in three patients.
- reference: PMID:8447317
reference_title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
The fifth patient, the only Caucasian, was homozygous for a different point
mutation, a C-to-T mutation, converting Arg to Trp (codon 90).
explanation: A missense genotype (R90W) in the first Caucasian patient.
- reference: PMID:22106711
reference_title: Progress and problems in muscle glycogenoses.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
all other African American patients harbored the W78X mutation, at least in
heterozygosity, suggesting a founder effect.
explanation: Supports the founder-effect statement for W78X.
- reference: PMID:27612597
reference_title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
PGAM-M sequencing showed compound heterozygous variants: c.233G>A, which has
been found only in African-Americans with this disease, and a novel variant,
c.278G>A.
explanation: A compound heterozygous genotype including the recurrent allele.
- reference: PMID:19273759
reference_title: Muscle phosphoglycerate mutase deficiency revisited.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
molecular studies revealed 2 novel homozygous mutations, a nonsense mutation
and a single nucleotide deletion
explanation: Truncating homozygous genotypes in Pakistani and Italian patients.
- reference: PMID:30310767
reference_title: Novel heterozygous mutations in the PGAM2 gene with negative exercise testing.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Genetic testing found two novel PGAM2 variants (c.426C > A, p.Tyr142Ter and
c.533delG, p.Gly178Alafs*31).
explanation: Two further truncating variants in an adult-diagnosed patient.
- reference: PMID:34237446
reference_title: Targeted exome sequencing identified a novel frameshift variant in the PGAM2 gene causing glycogen storage disease type X.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Targeted exome sequencing revealed a biallelic frameshift variant (c.687dupC;
p. Met230Hisfs*6) in the PGAM2 gene located on chromosome 7p13.
explanation: A homozygous frameshift genotype in a Pakistani family.
- reference: PMID:34908252
reference_title: Genetic defects are common in myopathies with tubular aggregates.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
A homozygous missense variant c.29G>A (p. Arg10Gln) was identified in Case 3,
and a homozygous frameshift deletion c.532delG (p.Gly178fs30Ter) in Case 4.
explanation: >-
PGAM2 genotypes identified in a tubular-aggregate myopathy cohort.
- reference: PMID:10545043
reference_title: Manifesting heterozygotes in a Japanese family with a novel mutation in the muscle-specific phosphoglycerate mutase (PGAM-M) gene.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Two heterozygous family members for the G97D mutation presented with
exercise intolerance and muscle cramps.
explanation: Symptomatic heterozygous carriers of a missense allele.
diagnosis:
- name: Muscle biopsy with phosphoglycerate mutase enzymology
description: >-
Muscle biopsy shows reduced PGAM activity with normal activities of the other
glycolytic enzymes, and often tubular aggregates in type 2 fibres. Light
microscopy can be nearly normal. The clinical triad of exercise-induced cramps,
recurrent myoglobinuria and tubular aggregates on biopsy is highly suggestive
of the diagnosis.
evidence:
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
this clinicopathological triad is highly suggestive of PGAM deficiency
explanation: >-
Based on 15 literature cases and 15 tubular-aggregate biopsies from the
authors' laboratory.
- reference: PMID:19783439
reference_title: Unusual presentation of phosphoglycerate mutase deficiency due to two different mutations in PGAM-M gene.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle biopsy showed only mild abnormalities, but biochemical study revealed a
defect of PGAM and genetic analysis showed two different mutations in the
PGAM-M gene.
explanation: >-
Shows that a near-normal biopsy does not exclude the diagnosis and that
enzymology is needed.
- name: Molecular genetic testing of PGAM2
description: >-
Sequencing of PGAM2, increasingly through neuromuscular or rhabdomyolysis gene
panels and exome sequencing, confirms the diagnosis and can replace muscle
biopsy when clinical suspicion is high.
evidence:
- reference: PMID:39463617
reference_title: "Recurrent Myalgia, Dark Urine, and Exercise Intolerance: Glycogen Storage Disease Type X Diagnosed Through Gene Sequencing Panel."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
DNA sequencing-based gene panel testing can serve as a non-invasive
alternative to muscle biopsy for diagnosing metabolic myopathies when
suspicion is high.
explanation: >-
A single pediatric case report in which the diagnosis was made by panel
sequencing without biopsy. The genotype in that case was one pathogenic
allele plus two variants of uncertain significance of unconfirmed phase.
- reference: PMID:28779239
reference_title: Exome sequencing in Jewish and Arab patients with rhabdomyolysis reveals single-gene etiology in 43% of cases.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
In PGAM2 (Phosphoglycerate mutase 2 (Muscle)) we identified a highly
conserved, novel homozygous missense mutation
explanation: >-
A PGAM2 diagnosis reached by exome sequencing of a rhabdomyolysis cohort.
- name: Muscle 31P magnetic resonance spectroscopy
description: >-
In vivo phosphorus MR spectroscopy detects accumulation of sugar phosphates
(phosphomonoesters) during glycolytic exercise, documenting a partial
glycolytic block non-invasively. It is a research tool rather than a routine
diagnostic test.
evidence:
- reference: PMID:3034220
reference_title: Phosphorus magnetic resonance spectroscopy of partially blocked muscle glycolysis. An in vivo study of phosphoglycerate mutase deficiency.
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
These findings suggest that phosphorus magnetic resonance spectroscopy can
detect partial defects, as well as full glycolytic blocks, in muscle
metabolism.
explanation: Establishes the method's sensitivity to the partial block.
treatments:
- name: Avoidance of strenuous exercise and hydration
description: >-
Management rests on avoiding brief strenuous exertion that provokes episodes,
maintaining hydration, and lifestyle adaptation with carefully titrated
exercise. No disease-modifying therapy exists.
therapeutic_modality: BEHAVIORAL
treatment_term:
preferred_term: exercise restriction and hydration counseling
term:
id: NCIT:C15747
label: Supportive Care
target_phenotypes:
- preferred_term: Exercise-induced rhabdomyolysis
term:
id: HP:0009045
label: Exercise-induced rhabdomyolysis
- preferred_term: Exercise-induced myoglobinuria
term:
id: HP:0008305
label: Exercise-induced myoglobinuria
evidence:
- reference: PMID:39463617
reference_title: "Recurrent Myalgia, Dark Urine, and Exercise Intolerance: Glycogen Storage Disease Type X Diagnosed Through Gene Sequencing Panel."
supports: SUPPORT
evidence_source: OTHER
quote_role: BACKGROUND
snippet: >-
The mainstay of management of GSD X is hydration and avoidance of strenuous
exercise
explanation: >-
The case report's discussion states the standard management; this is a
recommendation rather than an outcome measurement.
- reference: PMID:30397902
reference_title: Myopathies Related to Glycogen Metabolism Disorders.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
Therapy for glycogen storage diseases that result in exercise-induced
symptoms includes lifestyle adaptation and carefully titrated exercise.
explanation: >-
Class-level management recommendation covering the exercise-induced
glycogenoses, including PGAM2 deficiency.
- name: Dantrolene
description: >-
Dantrolene, which inhibits calcium release from the sarcoplasmic reticulum,
abolished exertional cramps and contracture in a single patient with tubular
aggregates and increased muscle calcium. It has not been studied beyond that
report and is not established therapy.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: dantrolene
term:
id: CHEBI:4317
label: dantrolene
target_mechanisms:
- target: Sarcoplasmic Reticulum Calcium Handling Imbalance
description: Dantrolene inhibits calcium release from the sarcoplasmic reticulum.
target_phenotypes:
- preferred_term: Exercise-induced muscle cramps
term:
id: HP:0003710
label: Exercise-induced muscle cramps
evidence:
- reference: PMID:10443898
reference_title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
On dantrolene treatment, the patient became asymptomatic, and the ischemic
test was performed without contracture.
explanation: >-
Symptomatic response in one patient; an uncontrolled single case.
- name: Substrate supplementation (glucose, lactate or lipid)
description: >-
Unlike McArdle disease, providing fuels that bypass the glycolytic block does
not improve exercise capacity in PGAM deficiency. Lipid and lactate infusions
gave no benefit in a placebo-controlled study, so substrate supplementation is
not supported.
therapeutic_modality: OTHER
treatment_term:
preferred_term: substrate (fuel) supplementation
term:
id: NCIT:C15433
label: Nutritional Support
target_phenotypes:
- preferred_term: Exercise intolerance
term:
id: HP:0003546
label: Exercise intolerance
evidence:
- reference: PMID:16157752
reference_title: Effect of fuels on exercise capacity in muscle phosphoglycerate mutase deficiency.
supports: REFUTE
evidence_source: HUMAN_CLINICAL
snippet: >-
in patients with PGAMD, cycle exercise and oxidative capacity are virtually
normal, a second wind does not occur, and lipid and lactate supplements do
not improve exercise capacity.
explanation: >-
Single-blind placebo-controlled infusion study in two patients showing no
benefit of lipid or lactate supplementation.
- name: Genetic counseling
description: >-
Genetic counseling for affected families, given autosomal recessive
inheritance and the possibility of symptomatic heterozygous carriers.
therapeutic_modality: BEHAVIORAL
treatment_term:
preferred_term: Genetic Counseling
term:
id: NCIT:C15240
label: Genetic Counseling
evidence:
- reference: PMID:39463617
reference_title: "Recurrent Myalgia, Dark Urine, and Exercise Intolerance: Glycogen Storage Disease Type X Diagnosed Through Gene Sequencing Panel."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
This accurate diagnosis resulted in a referral to genetics and appropriate
management, including hydration, avoidance of strenuous exercise, and genetic
counseling.
explanation: Genetic counseling as part of management after diagnosis.
histopathology:
- name: Subsarcolemmal tubular aggregates in type 2 fibres
description: >-
Tubular aggregates, derived from the sarcoplasmic reticulum, in type 2 fibres.
Seen in about a third of reported biopsies and not described in other
glycogenoses.
evidence:
- reference: PMID:16881065
reference_title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle biopsies showed subsarcolemmal tubular aggregates in type 2 fibers.
explanation: The characteristic biopsy finding.
- name: Mild glycogen accumulation
description: >-
Mild increase in periodic acid-Schiff staining and glycogen content; routine
histology may otherwise be near normal.
evidence:
- reference: PMID:6308514
reference_title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Muscle biopsy showed increased PAS stain; glycogen concentration was twice
normal.
explanation: Glycogen excess on histochemistry and biochemistry.
discussions:
- discussion_id: gap_gsd10_tubular_aggregate_trigger
kind: KNOWLEDGE_GAP
status: OPEN
prompt: >-
Why does PGAM deficiency, alone among the glycogenoses, produce tubular
aggregates, and does the sarcoplasmic reticulum calcium imbalance reported in
one patient explain both the aggregates and the contractures?
attaches_to:
- "pathophysiology#Sarcoplasmic Reticulum Calcium Handling Imbalance"
rationale: >-
Tubular aggregates are seen in about a third of GSD X biopsies and have not
been reported in other glycogenoses, yet the trigger is unknown. The only
mechanistic data come from one patient with increased muscle calcium and
Ca2+-ATPase activity whose contractures resolved on dantrolene. The edge from
exertional energy failure to calcium imbalance in this entry is therefore
inferred rather than demonstrated.
proposed_experiments:
- experiment_id: exp_gsd10_sr_calcium_multi_patient
name: Sarcoplasmic reticulum calcium handling in a series of PGAM2-deficient muscle biopsies
description: >-
Measure SR calcium uptake and release, Ca2+-ATPase activity and total calcium
in biopsies from several genetically confirmed patients with and without
tubular aggregates, to test whether the single-patient finding generalises
and tracks with aggregate formation.
evidence:
- reference: PMID:22106711
reference_title: Progress and problems in muscle glycogenoses.
supports: SUPPORT
evidence_source: OTHER
quote_role: REVIEW_SYNTHESIS
snippet: >-
Although they are a nonspecific pathological change seen in diverse
conditions, including exposure to drugs, toxins, and hypoxia, their
association with PGAM deficiency does not appear to be casual although the
specific trigger remains unknown.
explanation: >-
Review stating that the trigger for tubular aggregates in GSD X is unknown.
- discussion_id: gap_gsd10_animal_model
kind: KNOWLEDGE_GAP
status: OPEN
prompt: >-
Is there an animal model of muscle PGAM (PGAM2) deficiency?
attaches_to:
- "pathophysiology#Muscle Phosphoglycerate Mutase Deficiency"
rationale: >-
The genetically modified phosphoglycerate mutase mice reported are a Pgam1
knockout, which is embryonic lethal when homozygous, and a Pgam2
overexpressing transgenic; neither models loss of the muscle isoform. Without a
Pgam2 loss-of-function model, the exertional energy deficit, the calcium
imbalance and tubular aggregate formation cannot be studied experimentally.
proposed_experiments:
- experiment_id: exp_gsd10_pgam2_knockout_mouse
name: Pgam2 loss-of-function mouse with exercise and muscle histology phenotyping
description: >-
Generate a Pgam2 null or W78X knock-in mouse and assess high-intensity
exercise tolerance, exertional CK release, muscle calcium handling and
tubular aggregate formation.
evidence:
- reference: PMID:33914812
reference_title: Characterization of genetically modified mice for phosphoglycerate mutase, a vitally-essential enzyme in glycolysis.
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: >-
We observed that homozygous knockout mice of Pgam1 were embryonic lethal.
explanation: >-
The PGAM mouse lines characterized in this study are a Pgam1 knockout and a
Pgam2 overexpressing transgenic, not a Pgam2 loss of function.
notes: >-
Scope. This entry covers muscle phosphoglycerate mutase (PGAM2) deficiency. It is
distinct from the other distal glycolytic myopathies with a similar clinical
picture, namely phosphoglycerate kinase (PGK1), beta-enolase (ENO3) and aldolase
A deficiencies, and from McArdle disease (PYGM), from which it differs by the
lack of a second-wind phenomenon and by near-normal cycle exercise capacity.
Claims not asserted here. Non-spherocytic hemolytic anemia appears in some
database summaries of this disease, but no PGAM2-deficient patient in the
literature cited here has it, and its absence fits the sparing of tissues that
use the BB isoenzyme; it is omitted. Hyperuricemia, gout, coronary
arteriosclerosis and renal failure are listed in some secondary summaries, but
no primary report cited here documents them in a PGAM2-deficient patient, so
they are omitted rather than asserted. One patient had interventricular septal
hypertrophy (PMID:8006681); cardiac involvement has not been established and is
not curated as a phenotype.
No GeneReviews chapter covers this disorder.
references:
- reference: PMID:6262916
title: "Human muscle phosphoglycerate mutase deficiency: newly discovered metabolic myopathy."
- reference: PMID:6283419
title: Muscle phosphoglycerate mutase deficiency.
- reference: PMID:6308514
title: "Muscle phosphoglycerate mutase (PGAM) deficiency: a second case."
- reference: PMID:2987758
title: "Physiologic assessment of phosphoglycerate mutase deficiency: incremental exercise test."
- reference: PMID:3034220
title: Phosphorus magnetic resonance spectroscopy of partially blocked muscle glycolysis. An in vivo study of phosphoglycerate mutase deficiency.
- reference: PMID:8447317
title: The molecular genetic basis of muscle phosphoglycerate mutase (PGAM) deficiency.
- reference: PMID:8006681
title: "Muscle phosphoglycerate mutase (PGAM) deficiency in the first Caucasian patient: biochemistry, muscle culture and 31P-MR spectroscopy."
- reference: PMID:10545043
title: Manifesting heterozygotes in a Japanese family with a novel mutation in the muscle-specific phosphoglycerate mutase (PGAM-M) gene.
- reference: PMID:10443898
title: "Muscle phosphoglycerate mutase deficiency with tubular aggregates: effect of dantrolene."
- reference: PMID:16157752
title: Effect of fuels on exercise capacity in muscle phosphoglycerate mutase deficiency.
- reference: PMID:16881065
title: "Exercise-induced cramp, myoglobinuria, and tubular aggregates in phosphoglycerate mutase deficiency."
- reference: PMID:19273759
title: Muscle phosphoglycerate mutase deficiency revisited.
- reference: PMID:19783439
title: Unusual presentation of phosphoglycerate mutase deficiency due to two different mutations in PGAM-M gene.
- reference: PMID:22106711
title: Progress and problems in muscle glycogenoses.
- reference: PMID:23169535
title: Phosphoglycerate mutase deficiency with tubular aggregates in a patient from Panama.
- reference: PMID:27612597
title: Phosphoglycerate mutase deficiency (glycogen storage disease X) caused by a novel variant in PGAM-M.
- reference: PMID:28779239
title: Exome sequencing in Jewish and Arab patients with rhabdomyolysis reveals single-gene etiology in 43% of cases.
- reference: PMID:30310767
title: Novel heterozygous mutations in the PGAM2 gene with negative exercise testing.
- reference: PMID:30397902
title: Myopathies Related to Glycogen Metabolism Disorders.
- reference: PMID:33914812
title: Characterization of genetically modified mice for phosphoglycerate mutase, a vitally-essential enzyme in glycolysis.
- reference: PMID:34237446
title: Targeted exome sequencing identified a novel frameshift variant in the PGAM2 gene causing glycogen storage disease type X.
- reference: PMID:34908252
title: Genetic defects are common in myopathies with tubular aggregates.
- reference: PMID:39463617
title: "Recurrent Myalgia, Dark Urine, and Exercise Intolerance: Glycogen Storage Disease Type X Diagnosed Through Gene Sequencing Panel."
datasets: []
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Create: Glycogen_Storage_Disease_Due_To_Phosphoglycerate_Mutase_Deficiency · 2026-09-29T00:16:29Z · View source
De-novo curation of GSD X (muscle phosphoglycerate mutase deficiency, PGAM2) from the stub MONDO:0009865. Required deep-research input: the Perplexity report (sonar-deep-research, default/medium reasoning effort), produced through a session-local streaming wrapper (sitecustomize.py on PYTHONPATH, not committed) because the non-streaming call is dropped by the egress proxy after about 300 s (dismech#9357). The report cites bare URLs (dismech#10249); its 17 sidecar URLs were resolved by hand (PMC id converter / PubMed) to PMID:6262916, PMID:8447317 (PMC1682163), PMID:27612597, PMID:30310767 (PMC6178239) and PMID:30740405 (PMC6331362); the rest are database pages (OMIM, Orphanet, MedlinePlus, MalaCards, ClinVar, GTR, MedGen, PomBase, Alliance) with no PMID. just preflight-dr passed (PGAM2 mentioned 146 times, OMIM 261670 agrees with MONDO). Report content rejected: its citation [5] is described as a BMC Medical Genetics case report but resolves to Mol Genet Metab Rep (PMID:30310767); the claim that PGAM activity in deficiency is only slightly lower than PFK is attributed to Koo et al. but is not in that abstract; the non-spherocytic hemolytic anemia (from a PomBase summary) and the hyperuricemia/gout/coronary arteriosclerosis features (attributed to the Kanungo 2018 review, PMID:30740405, whose abstract does not mention GSD X) are not supported by any primary report and were not curated; several suggested HPO/GO/CL/MONDO CURIEs were mislabelled per the report's own term validation, and every term was looked up afresh. PMID:30740405 was not cited. The report's ochratoxin A broiler-chicken paper (PMID:6940112) was screened by title only and not used: it concerns an induced toxicosis, not a PGAM2 defect. Independent PubMed searches added 19 primary reports and reviews (index and second cases, the 1993 molecular study, 31P-MRS and exercise-physiology studies, manifesting heterozygotes, tubular-aggregate and dantrolene reports, exome/panel cohorts, and a PGAM mouse study used only to document the absence of a Pgam2 loss-of-function model). PMID:19322572 (E154K manifesting heterozygote) was fetched but has no cached abstract and was not cited. No GeneReviews chapter exists (check-genereviews --online: NO_CHAPTER; the StatPearls candidate is the generic GSD chapter). Validation: just validate passed; validate-terms passed; count-verified-snippets 80/80; check-entity-refs, check-causal-targets, check-duplicate-keys, check-coarse-phenotypes, check-qualifier-terms, check-snippet-length, check-title-snippets, check-snippet-grading, check-reference-titles and check-folded-hyphens all OK; list-disconnected-phenotypes 9/9 phenotypes causally connected. The authoritative just validate-disorders run passed (1 file, 80 snippets, 0 issues), and all 23 ungated whole-KB CI gates (including the newly-ungrounded-genes gate) all passed.
Glycogen storage disease due to phosphoglycerate mutase deficiency is best defined as a muscle glycogenosis and metabolic myopathy caused by deficiency of the enzyme phosphoglycerate mutase in skeletal muscle, leading to impaired glycolysis and exercise intolerance.[3][4][9] Orphanet describes the disorder as “a rare glycogen storage disease characterized by susceptibility to rhabdomyolysis complicated by episodes of exercise-induced muscle pain, cramping, and myoglobinuria,” noting that tubular aggregates may be present on muscle biopsy.[4] MedlinePlus Genetics similarly characterizes phosphoglycerate mutase deficiency as “a disorder that primarily affects muscles used for movement (skeletal muscles)” and emphasizes that affected individuals experience muscle aches or cramping following strenuous physical activity with recurrent episodes of myoglobinuria that can progress to kidney failure if untreated.[6] In the context of the glycogen storage disease classification, a recent review places GSD10 among the muscle GSDs, with the enzymatic defect at the level of muscle phosphoglycerate mutase, an essential enzyme for conversion of 3-phosphoglycerate to 2-phosphoglycerate during glycolysis, and summarizes typical clinical features as exercise-induced muscle cramps and pain, exercise intolerance, rhabdomyolysis, myoglobinuria, hyperuricemia or gout, and coronary arteriosclerosis.[9]
Historically, the condition was first recognized as a distinct human disease entity by DiMauro and colleagues in 1981, who reported a 52-year-old man with “intolerance for strenuous exercise and recurrent pigmenturia since adolescence” whose muscle phosphoglycerate mutase activity was decreased to 5.7% of the lowest control value, with normal activity of other glycolytic enzymes and normal muscle glycogen concentration.[16] This seminal case, supported by electrophoretic studies showing residual BB (brain-type) isoenzyme activity in muscle, established the concept of a genetic defect of the muscle M subunit of PGAM and laid the foundation for later molecular genetic investigations.[16][11][12] Subsequent series such as Tsujino et al. (1993) and the JAMA Neurology “Muscle Phosphoglycerate Mutase Deficiency Revisited” article confirmed the association of PGAM2 mutations with a reproducible phenotype of exercise intolerance, cramps, and myoglobinuria, while introducing additional features such as sarcoplasmic reticulum proliferation and tubular aggregates, and clarifying that the disease is not confined to African Americans and is genetically heterogeneous.[3][11]
Clinically, the core symptom cluster belongs to the domain of exertional metabolic myopathies, overlapping with other glycolytic and glycogenolytic defects such as McArdle disease (myophosphorylase deficiency) and phosphofructokinase deficiency, but distinguished by its specific enzymatic defect, characteristic pattern of residual PGAM activity due to the B isoform, and relatively benign long-term course.[2][3][4][9] Human Phenotype Ontology (HPO) terms that capture the cardinal manifestations include exercise-induced muscle cramps (HP:0003396), exercise intolerance (HP:0003546), myoglobinuria (HP:0003198), episodic rhabdomyolysis (HP:0003201), elevated serum creatine kinase (HP:0003236), and tubular aggregates in skeletal muscle (HP:0030191).[4][5][6][9] MedGen, which aggregates multiple vocabularies, lists the concept “Glycogen storage disease type X” (C0268149) and notes that phosphoglycerate mutase deficiency is a disorder primarily affecting skeletal muscle with onset in childhood or adolescence and recurrent myoglobinuria.[15]
At the level of disease identifiers, glycogen storage disease due to phosphoglycerate mutase deficiency is assigned OMIM phenotype number 261670, under the preferred name “Glycogen storage disease X; GSD10,” which is linked via a number sign to causative homozygous or compound heterozygous mutations in the PGAM2 gene (OMIM 612931).[7][12] Orphanet catalogs the disorder as ORPHA:97234, under several synonymous labels including “Glycogen storage disease due to phosphoglycerate mutase 2 deficiency,” “GSD type 10,” “Muscle phosphoglycerate mutase deficiency,” and “DiMauro disease.”[4] MedGen associates the concept with SNOMED CT terms such as “Muscle phosphoglycerate mutase deficiency (61772003)” and “Glycogen storage disease type X (61772003),” and cross-references OMIM 261670 and Orphanet 97234.[15] The Monarch Initiative and PomBase both reference the disease as MONDO:0009865, “glycogen storage disease due to phosphoglycerate mutase deficiency,” classified as a disorder of glycogen metabolism and disorder of glycolysis.[1][15]
MalaCards, a compendium of human diseases, lists the entity as “Glycogen Storage Disease X (GSD10)” and notes alternative names including “PGAMM deficiency” and “Myopathy due to phosphoglycerate mutase deficiency,” providing links to OMIM, Orphanet, and MedGen identifiers.[2][15] MedlinePlus Genetics uses “Phosphoglycerate mutase deficiency” as the primary patient-facing name, and includes synonyms such as “Glycogen storage disease X,” “GSD X,” “GSD10,” “Myopathy due to phosphoglycerate mutase deficiency,” “PGAM deficiency,” and “PGAMM deficiency.”[6] These identifiers and synonyms correspond closely to formal ontology labels: the MONDO term MONDO:0009865 is explicitly mapped in PomBase as “glycogen storage disease due to phosphoglycerate mutase deficiency,” and is linked to the human PGAM2 gene and the fission yeast ortholog gpm1.[1]
From an ontology perspective, relevant high-level disease categories include MONDO:0005291 (glycogen storage disease), MONDO:0005067 (metabolic myopathy), and MONDO:0004880 (disorder of glycolysis), with GSD type X occupying a specific intersection of glycogen metabolism and glycolytic pathway defects.[1][4][9] While ICD-10 and ICD-11 do not appear to have a unique code dedicated to GSD type X in the sources considered, the condition would typically be coded under broad categories for “Other glycogen storage diseases (E74.0)” or “Other specified metabolic myopathies,” reflecting its rarity and the tendency for specific GSD types to be grouped in practice.[9][15] MeSH (Medical Subject Headings) and UMLS entries are linked via MedGen and OMIM; however, detailed MeSH descriptors for GSD10 specifically are not evident in the available search results, emphasizing the role of specialized rare disease databases in cataloguing such ultra-rare conditions.[7][15]
Clinical and research communities employ a variety of synonyms for glycogen storage disease due to phosphoglycerate mutase deficiency, reflecting historical evolution of terminology and different emphases on biochemical versus clinical features.[4][6][7][15] Orphanet lists synonyms including “Glycogen storage disease due to phosphoglycerate mutase 2 deficiency,” “GSD type 10,” “Muscle phosphoglycerate mutase deficiency,” “Myopathy due to phosphoglycerate mutase deficiency,” “GSD due to phosphoglycerate mutase 2 deficiency,” “Glycogenosis due to phosphoglycerate mutase 2 deficiency,” “Glycogen storage disease, type 10,” “Glycogen storage disease, type X,” “Glycogen storage disease due to PGAM2 deficiency,” “DiMauro disease,” and “PGAM deficiency.”[4] MedlinePlus overlaps by listing “Deficiency mutase phosphoglycerate,” “Glycogen storage disease X,” “GSD X,” “GSD10,” “Myopathy due to phosphoglycerate mutase deficiency,” “PGAM deficiency,” and “PGAMM deficiency.”[6] MedGen similarly aggregates variants such as “Dimauro disease,” “GSD X,” and “PGAMM deficiency.”[15]
These naming conventions encode several dimensions: the biochemical defect (phosphoglycerate mutase deficiency, PGAM2 deficiency, PGAM-M deficiency), the clinical category (glycogen storage disease type X or GSD10), and the historical eponym (DiMauro disease) honoring the first describer.[4][16] In molecular genetics contexts, the gene-centric label “PGAM2-related glycogen storage disease X” is increasingly used, consistent with contemporary practice of naming Mendelian disorders by gene and phenotype.[7][12] In many databases, synonyms are explicitly mapped to ontology terms: for example, MedGen associates “Muscle phosphoglycerate mutase deficiency” and “GSD X - glycogen storage disease type X” with the concept C0268149, while Monarch Initiative maps these to MONDO:0009865.[1][15]
Regarding the nature of information sources, most of the disease-level characteristics summarized here are derived from aggregated resources such as OMIM, Orphanet, MedGen, MalaCards, and GeneReviews-style reviews, which synthesize individual patient reports and case series rather than raw electronic health record data.[2][4][7][9][15] Primary clinical evidence comes from human case reports and small series, such as the original Science article by DiMauro et al. (1981; PMID:6262916), the Am J Hum Genet molecular study by Tsujino et al. (1993; PMID:8447317), the JAMA Neurology revisitation, and more recent case reports describing novel PGAM2 variants.[5][8][11][16] These publications typically involve detailed phenotyping, muscle biopsies, enzyme assays, and genetic sequencing, making them high-quality but limited in number due to the disease’s rarity. There is no evidence in the available sources that large-scale EHR-based phenomic analyses have yet been performed for GSD10, underscoring the current reliance on curated disease-level summaries and expert reviews.[4][9]
The primary causal factor in glycogen storage disease due to phosphoglycerate mutase deficiency is biallelic pathogenic variation in the PGAM2 gene, which encodes muscle phosphoglycerate mutase (PGAM-M), the muscle-specific subunit of the phosphoglycerate mutase dimer.[7][10][12] OMIM notes that a number sign (#) is used with the GSD10 entry because the disease is caused by homozygous or compound heterozygous mutation in PGAM2 on chromosome 7p13.[7] The PGAM2 gene’s cytogenetic location is given as 7p13, with genomic coordinates 7:44,062,727–44,065,567 (GRCh38), and it encodes the muscle phosphoglycerate mutase-2 enzyme (EC 5.4.2.1).[12] NCBI Gene and Alliance of Genome Resources reiterate that PGAM2 encodes the muscle-specific subunit of PGAM, which forms MM, MB, and BB isozyme dimers in different tissues, and confirm that mutations in this gene cause muscle phosphoglycerate mutase deficiency, also known as glycogen storage disease X.[10][14]
Molecular genetic studies have identified several recurrent and private PGAM2 variants associated with GSD10, all of which appear to be loss-of-function or severe hypomorphic alleles that markedly reduce enzyme activity.[11][12][13] Tsujino et al. (1993) described three homozygous or compound heterozygous mutations in five patients: a G-to-A transition at codon 78 resulting in Trp78Ter (W78X), an A-to-C mutation at codon 89 converting Glu89 to Ala (E89A), and a C-to-T mutation at codon 90 converting Arg90 to Trp (R90W).[11][12][13] Orphanet notes that about half of identified cases are related to the p.W78X variant, particularly in patients of African American ancestry, with the remaining cases distributed across other ethnic groups.[4][13] Later, Hadjigeorgiou et al. (1999) reported a 209G>A transition resulting in substitution of glycine 97 by aspartic acid (G97D), a highly conserved residue, in a Japanese family with partial PGAM2 deficiency, where two heterozygous family members showed exercise intolerance and muscle cramps, illustrating the concept of manifesting heterozygotes.[12]
More recent case reports have expanded the mutational spectrum. Koo et al. (2016) described compound heterozygous PGAM-M variants c.233G>A (codon 78 Trp to Ter, W78X) and c.278G>A in a patient with phosphoglycerate mutase deficiency, identifying c.278G>A as a novel disease-causing variant.[8][13] A 2018 case report in BMC Medical Genetics presented a 52-year-old patient diagnosed with GSDX carrying two novel heterozygous variants in exon 2 of PGAM2, c.426C>A (p.Tyr142Ter) and c.533delG (p.Gly178Alafs*31), both predicted to result in truncated proteins; interestingly, this patient had a normal increase in post-exercise lactate, demonstrating phenotypic variability even within severe PGAM2 deficiency.[5] ClinVar’s curated record for NM_000290.4(PGAM2):c.233G>A (p.Trp78Ter) classifies this variant as pathogenic/likely pathogenic based on multiple submissions and notes that PGAM2 activity in W78X homozygotes or compound heterozygotes is reduced to 2.1–6% of normal values.[13]
The functional consequence of these variants is a marked reduction or absence of the MM isoform of PGAM in muscle, with residual enzyme activity attributable to expression of the BB (brain-type) isozyme.[16] DiMauro et al. demonstrated that in their index patient, residual PGAM activity in muscle was represented by the BB isoenzyme based on electrophoretic, heat lability, and mercury inhibition studies, supporting the hypothesis that muscle symptoms arise from selective loss of PGAM-M with partial compensation by PGAM-B.[16] PGAM is normally a highly active enzyme—Koo et al. note that even in a deficient state, PGAM activity is only slightly lower than phosphofructokinase, the rate-limiting step of glycolysis—so substantial loss of PGAM2 creates a partial block of terminal glycolysis, particularly during high-intensity exercise when glycolytic flux is maximal.[5] In summary, the etiologic core of GSD10 is germline, autosomal recessive, loss-of-function PGAM2 variation leading to severe reduction of muscle PGAM activity, with occasional heterozygous carriers manifesting mild symptoms.
Within the rare disease context, “risk factors” are largely synonymous with carrying pathogenic or likely pathogenic PGAM2 variants, yet the available literature suggests additional genetic nuances including recurrent variants with population-specific frequencies, manifesting heterozygotes, and possible modifiers affecting disease severity.[4][11][12][13] The W78X nonsense variant c.233G>A emerges as a key genetic risk factor in African-ancestry populations. ClinVar notes that NM_000290.3:c.233G>A (p.Trp78*) has an allele frequency of approximately 0.007 in the African subpopulation of gnomAD and that at least one homozygote has been observed in control datasets, implying that this allele may be relatively common and that penetrance could be incomplete or modulated by other factors.[13] Tsujino et al. found this variant homozygous in three unrelated African American patients with GSD10 and as part of a compound heterozygous genotype with G89A in a fourth patient, providing strong evidence for its pathogenicity.[11][13]
The G97D variant illustrates potential modifier or susceptibility roles in heterozygotes. Hadjigeorgiou et al. reported that two family members heterozygous for G97D presented with exercise intolerance and muscle cramps, and noted that manifesting heterozygotes had previously been described in other families.[12] This suggests that even partial reductions in PGAM2 activity, perhaps combined with environmental stressors such as high-intensity exercise or coexisting muscle conditions, can yield clinically apparent phenotypes, although the penetrance and expressivity of such heterozygous variants remain poorly quantified due to small sample sizes.[12] The BMC case with Tyr142Ter and Gly178Alafs*31 variants underscores that truncating mutations throughout the coding sequence can be pathogenic, and the presence of two different severe alleles may explain the later adult-onset but nonetheless clinically significant phenotype.[5]
Apart from PGAM2 itself, MalaCards lists several genes associated with Glycogen Storage Disease X based on publication co-mentions, including DBNL (Drebrin-like), PGAM1 (phosphoglycerate mutase 1), and non-coding functional elements like LOC129998343, albeit with much lower evidence scores than PGAM2.[2] PGAM1 encodes the brain-type subunit, and its activity in muscle may modulate residual PGAM activity; Koo et al. and DiMauro et al. both emphasize that residual PGAM activity in GSD10 muscle is attributable to the B isoform.[5][16] It is plausible, though not formally demonstrated, that PGAM1 expression levels or polymorphisms could act as genetic modifiers by influencing the degree of compensation, but no specific PGAM1 variants have been conclusively shown to alter GSD10 risk or severity in humans.[2][5][9] Similarly, DBNL and other genes listed by MalaCards likely reflect secondary literature associations rather than causal or modifier effects, and should be interpreted cautiously.[2]
Unlike multifactorial disorders, GSD10 does not have classic environmental risk factors that increase disease incidence in the general population; rather, environmental influences act as triggers and determinants of episode severity among genetically susceptible individuals.[4][5][6] Orphanet emphasizes that intense physical exercise is the principal precipitating factor, noting that GSD10 is characterized by exercise intolerance leading to rhabdomyolysis, with muscle cramps and pain accompanied by acute renal symptoms such as myoglobinuria; abnormal elevation of creatine kinase persists between exertional episodes in the majority of cases.[4] MedlinePlus similarly highlights strenuous physical activity as the context in which muscle aches or cramping and myoglobinuria occur, stating that these symptoms emerge following “strenuous physical activity” and that recurrent episodes of myoglobinuria are a hallmark of the disease.[6]
Hydration status appears to modulate risk of complications. Orphanet recommends regular, low-intensity exercise under optimal hydration conditions to reduce the intensity of muscle symptoms and implicitly the likelihood of severe rhabdomyolysis, suggesting that dehydration may exacerbate muscle breakdown and renal injury.[4] Although formal epidemiologic data quantifying this effect are lacking, clinical experience with rhabdomyolysis in other metabolic myopathies supports the notion that heat stress, dehydration, and concomitant use of myotoxic drugs (such as certain statins) can amplify muscle injury, and this likely applies to PGAM2-deficient patients as well.[4][9] Age at onset, sex, and family history function more as descriptors than environmental risk factors, since disease expression depends primarily on genotype and not on acquired exposures prior to symptom onset.
Interestingly, MedGen mentions a poultry study entitled “Glycogen storage disease type X caused by ochratoxin A in broiler chickens,” suggesting that in non-human species, exposure to certain mycotoxins can produce a functional analog of GSD10.[15] In that experiment, ochratoxin A induced a glycogen storage disease reminiscent of type X, illustrating that environmental toxins can perturb glycolytic enzymes or glycogen metabolism sufficiently to mimic genetic GSD phenotypes in animals.[15] However, this finding does not imply that ochratoxin A exposure causes human GSD10; rather, it exemplifies how an environmental agent can serve as an induced model of the disease in veterinary or experimental contexts.
Specific genetic protective variants that reduce the risk of developing GSD10 among carriers of PGAM2 mutations have not been described in the available literature, largely due to the small number of reported cases and the rare nature of the condition.[4][7][9] Nevertheless, the observations of manifesting heterozygotes and asymptomatic homozygotes for W78X in control cohorts indicate that background genetic modifiers, environmental exposures, and behavioral patterns can modulate penetrance and expressivity.[12][13] Potential protective factors would include higher baseline expression of PGAM1 (brain-type) in skeletal muscle, leading to greater residual PGAM activity, and favourable variants in other glycolytic enzymes or energy-metabolism pathways that enhance alternative ATP-generating routes such as oxidative phosphorylation or fatty acid oxidation; however, these hypotheses remain speculative without direct genomic or functional data in GSD10 patients.[5][9]
Environmental and lifestyle factors that function as protective influences are better documented. Orphanet explicitly recommends regular, low-intensity exercise under optimal hydration conditions, implying that such a regimen may reduce symptom intensity and episode frequency by avoiding high-energy demands that outstrip defective glycolytic capacity.[4] This aligns with broader principles in metabolic myopathy management, where patients are advised to avoid short bursts of maximal exertion and instead engage in moderate, sustained activities that rely more on oxidative metabolism, as well as to maintain adequate hydration and electrolyte balance to limit rhabdomyolysis and renal stress.[4][9] Thus, avoidance of strenuous exercise, heat stress, dehydration, and myotoxic drugs can be conceptualized as secondary protective strategies in genetically affected individuals.
Gene–environment interactions in GSD10 primarily involve the interplay between fixed PGAM2 deficits and variable exercise and hydration patterns. In individuals with biallelic PGAM2 mutations, intense short-term exercise that relies on anaerobic glycolysis interacts with defective PGAM function to precipitate acute energy failure in muscle cells, leading to contractures, membrane damage, and rhabdomyolysis.[4][5][16] Conversely, when such individuals engage mainly in low-intensity activities within a well-hydrated milieu, the residual glycolytic and oxidative pathways may suffice to meet energy demands without catastrophic breakdown, effectively mitigating clinical expression.[4][9] For heterozygous carriers with partial PGAM2 deficiency, the threshold at which exercise triggers symptoms may be higher, and gene–environment interaction could determine whether they remain asymptomatic or develop exertional myalgia and cramps.[12] In summary, GSD10 etiology is dominated by PGAM2 genetics, with environmental factors acting as modulators and triggers of episode severity rather than primary causes.
The core phenotypic manifestations of glycogen storage disease due to phosphoglycerate mutase deficiency reside in skeletal muscle, reflecting the tissue-specific expression of PGAM2 and the critical role of glycolysis in muscle contraction during high-intensity exercise.[4][5][6][9] Orphanet emphasizes susceptibility to rhabdomyolysis with episodes of exercise-induced muscle pain and cramping, noting that symptoms typically manifest during adolescence or childhood.[4] MedlinePlus Genetics describes that, beginning in childhood or adolescence, affected individuals experience muscle aches or cramping following strenuous physical activity and highlights that some patients have recurrent episodes of myoglobinuria, indicating repeated episodes of muscle breakdown.[6] Koo et al. and the Neuromuscular Disorders case report note that GSDX is characterized by exertional muscle contractures, weakness, hyperCKemia, and myoglobinuria, often accompanied by tubular aggregates in skeletal muscle.[5][8]
Clinically, patients report exercise intolerance, defined as an inability to sustain normal levels of physical exertion, with early fatigue, heavy sensation in active muscles, and cramps after brief sprints, climbing stairs, or lifting, as is typical for glycolytic pathway defects.[3][4][9] Tsujino et al. describe exercise intolerance and cramps as universal features among their five PGAM2-deficient patients, and DiMauro’s index patient reported intolerance for strenuous exercise since adolescence and recurrent pigmenturia after exertion.[11][16] HPO terms that represent these features include exercise intolerance (HP:0003546), muscle cramps (HP:0003394), exercise-induced muscle cramps (HP:0003396), and muscle weakness (HP:0001324), although frank persistent weakness between episodes appears less prominent than in some other myopathies.[4][5][8]
Muscle contractures and pain frequently accompany episodes of rhabdomyolysis. Koo et al. highlight exertional muscle contractures and weakness as defining features, and Neuromuscular Disorders notes that PGAM deficiency causes a metabolic myopathy characterized by exertional muscle contractures, weakness, hyperCKemia, and myoglobinuria.[5][8] The pain may be intense, localized to exercised muscle groups, and associated with swelling and tenderness, consistent with acute muscle fiber necrosis.[4][5] In some cases, patients describe “locking” of muscles during or after exercise, reflecting sustained contractures due to ATP depletion and failure of actin–myosin cross-bridge detachment, a phenomenon shared with other glycolytic myopathies.[9]
Muscle biopsy findings provide structural correlates to these symptoms. Orphanet notes that some patients present with glycogen accumulation and tubular aggregates within skeletal muscle cells, while JAMA Neurology reports frequent association with sarcoplasmic reticulum proliferation.[3][4] These features can be captured by HPO terms such as tubular aggregates (HP:0030191), abnormal glycogen accumulation in muscle (HP:0004305), and sarcoplasmic reticulum proliferation (which would currently be described descriptively rather than by a specific HPO code).[3][4][8] Overall, the skeletal muscle phenotype is episodic, triggered by exertion, and generally non-progressive in terms of baseline strength, aligning with the label of a “rare and benign muscle glycogenosis” used by the JAMA Neurology authors.[3]
Laboratory abnormalities in GSD10 reflect both the underlying enzymatic defect and the consequences of recurrent muscle breakdown.[4][5][8][9] Elevated serum creatine kinase (hyperCKemia) is a consistent finding during and often between episodes. Orphanet notes that intense physical exercise is accompanied by abnormal elevation of creatine kinase in the majority of cases, and Koo et al. refer to hyperCKemia as a feature of PGAM deficiency in association with exertional contractures and myoglobinuria.[4][5][8] Alliance of Genome Resources also annotates PGAM2 with the phenotype “Elevated circulating creatine kinase activity,” referencing OMIM 261670.[14] HPO term HP:0003236, “Elevated serum creatine kinase,” is therefore strongly associated with this disease.
Myoglobinuria is another hallmark biochemical phenotype, manifesting as dark urine due to excretion of myoglobin released from damaged muscle fibers.[4][5][6][8] MedlinePlus explains that myoglobinuria occurs when muscle tissue breaks down abnormally and releases myoglobin, which is processed by the kidneys and released in urine, and cautions that untreated myoglobinuria can lead to kidney failure.[6] Orphanet and Neuromuscular Disorders similarly highlight recurrent myoglobinuria as a key component of the disease.[4][8] The corresponding HPO term is HP:0003198, “Myoglobinuria.” During episodes of rhabdomyolysis, additional laboratory abnormalities may include raised serum lactate dehydrogenase, hyperkalemia, hyperphosphatemia, and elevated transaminases, although these are common to rhabdomyolysis and not specific to PGAM deficiency.[4][9]
Enzyme assays of PGAM in muscle tissue reveal the defining biochemical abnormality. DiMauro et al. measured muscle PGAM activity at 5.7% of the lowest control value in their index case, with normal activities of all other glycolytic enzymes and normal glycogen concentration, establishing that the defect is isolated to PGAM.[16] Tsujino et al. and OMIM report that PGAM2 activities in W78X homozygotes or compound heterozygotes are decreased to 2.1–6% of normal values, indicating a severe enzymatic deficiency.[11][12][13] Koo et al. remark that PGAM is normally highly active so that even in deficiency, its activity remains only slightly lower than phosphofructokinase, but the reduction is sufficient to create a partial block of terminal glycolysis, particularly during intense exercise.[5] In many patients, residual PGAM activity is attributable to the BB isoform, as shown by electrophoretic and inhibition studies, emphasizing that the enzyme abnormality is isoform-specific rather than complete absence of total PGAM.[16]
Interestingly, lactate responses to exercise may be variably affected. In the BMC case report, the 52-year-old patient with two truncating PGAM2 variants had a normal increase in post-exercise lactate during both anaerobic and aerobic exercise testing, despite his muscle biopsy confirming PGAM deficiency.[5] This finding suggests that upstream glycolytic steps may compensate to some extent and that terminal glycolytic block at PGAM may not always manifest as impaired lactate production, complicating the use of lactate responses as a diagnostic biomarker.[5][9] HPO terms such as abnormal lactate level (HP:0002151) could be considered for some patients, but evidence is not uniform. Overall, the biochemical phenotype is dominated by severely reduced PGAM activity in muscle, elevated CK, episodic myoglobinuria, and rhabdomyolysis, with more subtle changes in downstream metabolites and variable lactate kinetics.
Renal involvement in GSD10 occurs primarily as a complication of recurrent rhabdomyolysis and myoglobinuria rather than as a direct effect of PGAM2 deficiency on kidney cells.[4][6][9] Orphanet warns that rhabdomyolysis manifestations include acute renal symptoms such as myoglobinuria and emphasizes that recognizing and treating episodes promptly is critical because rhabdomyolysis can lead to significant morbidity and mortality, including multiorgan failure, if left untreated.[4] MedlinePlus similarly stresses that myoglobinuria can progress to kidney failure if not managed appropriately.[6] HPO terms capturing these renal aspects include acute kidney injury (HP:0001919), renal failure (HP:0001944), and pigment nephropathy (HP:0000147), though specific frequencies in GSD10 are not well quantified due to limited case numbers and variable severity of episodes.[4][6][9]
Hematologic manifestations are less prominently described, yet MONDO:0009865 in PomBase notes that “glycogen storage disease due to phosphoglycerate mutase deficiency” is characterized by non-spherocytic hemolytic anemia, exercise-induced cramping, myoglobinuria, and presence of tubular aggregates, implying that some patients may exhibit red blood cell abnormalities.[1] Non-spherocytic hemolytic anemia refers to hemolysis not caused by spherocytosis, typically due to defects in RBC glycolytic enzymes such as PGAM1 or PGK1, and its mention suggests that PGAM deficiency, whether via PGAM1 or PGAM2 involvement in erythrocytes, can result in increased RBC fragility.[1][9] However, clinical case series of GSD10 have focused primarily on muscle phenotypes, and explicit documentation of anemia in PGAM2-related disease is sparse, so this feature may be rare or more characteristic of PGAM1 deficiency, which is distinct but mechanistically related.[1][9]
Systemic manifestations beyond muscle and kidney are uncommon but have been mentioned. The comprehensive review of glycogen metabolism and glycogen storage disorders notes that clinical features of GSD10 can include hyperuricemia and gout as well as coronary arteriosclerosis.[9] Hyperuricemia likely results from increased purine nucleotide degradation during repeated ATP depletion and muscle breakdown, a mechanism shared with other states of chronic high-energy turnover and rhabdomyolysis, and can predispose to gouty arthritis.[9] Coronary arteriosclerosis is mentioned as a possible comorbidity, though its direct mechanistic link to PGAM2 deficiency is uncertain and could reflect conventional cardiovascular risk factors or systemic consequences of chronic metabolic stress.[9] HPO terms that could be associated include hyperuricemia (HP:0002149), gout (HP:0001997), and coronary arteriosclerosis (HP:0001677), but evidence strength for these features is weaker than for core muscle and renal manifestations.
Across case series and reviews, age of onset for GSD10 is predominantly in childhood or adolescence, with some adult-onset cases described.[4][5][6][9][16] Orphanet specifies that age of onset is “Adolescent, Childhood” and notes that fewer than fifty cases have been reported worldwide.[4] MedlinePlus reiterates that symptoms begin in childhood or adolescence, and the DiMauro case, though diagnosed at age 52, had onset of exercise intolerance and pigmenturia since adolescence.[6][16] The 2018 BMC case report also documented a 52-year-old patient whose symptoms had begun decades earlier but were only recognized as GSDX after genetic testing, illustrating delayed diagnosis rather than truly late onset.[5] HPO term HP:0003621 (Childhood onset) and HP:0003623 (Adolescent onset) are applicable.
Symptom severity in GSD10 is variable but often characterized as mild to moderate in terms of functional impairment, with episodes of severe rhabdomyolysis representing acute peaks of morbidity.[3][4][5][9] JAMA Neurology refers to PGAM deficiency as a “rare and benign muscle glycogenosis,” indicating that, in their experience, long-term outcomes are generally favourable despite recurrent symptoms.[3] Orphanet notes that GSD type X is not thought to impact longevity, and the glycogen metabolism review lists clinical features that can include serious complications like rhabdomyolysis and coronary arteriosclerosis but acknowledges that only fifteen cases have been reported, limiting generalizations.[4][9] Patients may experience significant pain and activity limitations during episodes, but between episodes many can carry out daily activities with careful avoidance of triggers.[4][5]
Symptom progression appears episodic rather than steadily progressive. The disease course is characterized by recurrent attacks of exertional myalgia, cramps, and myoglobinuria, often with persistent hyperCKemia between attacks, but without progressive fixed weakness or muscle wasting in most reported cases.[3][4][5][9] Orphanet emphasizes that intense exercise episodes are associated with abnormal creatine kinase elevation that persists between exertional episodes, suggesting a degree of chronic subclinical muscle injury.[4] However, in contrast to some other muscular dystrophies or storage myopathies, GSD10 does not usually lead to wheelchair dependence or severe disability, supporting the concept of a relatively benign course.[3][4][9] Disease duration is lifelong, reflecting its genetic nature, but the pattern is best described as chronic, lifelong, episodic, and relapsing, rather than progressive in the classical sense.
Quality of life impact varies with symptom frequency and severity. Recurrent painful episodes, fear of rhabdomyolysis, and restrictions on physical activity can impair social participation, employment in physically demanding jobs, and psychological well-being, although systematic assessments using instruments such as SF-36 or EQ-5D have not been reported for GSD10 specifically.[4][5][9] Patients may adapt by choosing less physically demanding lifestyles and using hydration strategies to reduce attacks, but may nonetheless experience limitations in sports participation or occupational choices.[4][5] The presence of benign overall prognosis may mitigate anxiety compared with more progressive neuromuscular disorders, yet acute episodes requiring hospitalization for rhabdomyolysis and renal monitoring represent significant stressors. In summary, phenotypes of GSD10 impact quality of life mainly through episodic pain, functional limitation during attacks, and chronic vigilance rather than continuous severe disability.
The PGAM2 gene (HGNC:8889) encodes phosphoglycerate mutase 2, the muscle-specific subunit of the phosphoglycerate mutase enzyme, and is the only gene conclusively implicated as causative in glycogen storage disease type X.[10][12][14] OMIM’s gene entry 612931 describes PGAM2 as encoding muscle phosphoglycerate mutase-2 (EC 5.4.2.1) and locates it on chromosome 7p13.[12] NCBI Gene confirms that PGAM2 encodes the muscle-specific PGAM subunit, and notes that the enzyme catalyzes the reversible reaction of 3-phosphoglycerate (3-PGA) to 2-phosphoglycerate (2-PGA) in the glycolytic pathway, forming dimeric isozymes composed of MM, MB, or BB subunits depending on tissue.[10] Alliance of Genome Resources reiterates that PGAM2 enables phosphoglycerate mutase activity, is involved in the glycolytic process and striated muscle contraction, is located in the nucleoplasm, and is implicated in glycogen storage disease X and myoglobinuria.[14]
PGAM2 is one of two major human PGAM subunit genes, the other being PGAM1, which encodes the brain-type subunit.[2][10][16] The enzyme phosphoglycerate mutase exists as a dimer, and mature human skeletal muscle contains almost exclusively the MM form of the enzyme, PGAM-M, in contrast to other tissues where BB or MB combinations may predominate.[11][16] DiMauro et al. demonstrated that residual PGAM activity in their index patient’s muscle was represented by the BB isoenzyme, indicating that PGAM1 expression persists in muscle and can partially compensate for PGAM2 deficiency, but not sufficiently to prevent symptoms during high-intensity exercise.[16] Tsujino et al. emphasize that the glycolytic enzyme PGAM is a dimer and that mature human skeletal muscle contains almost exclusively PGAM-M, providing a molecular basis for the muscle specificity of GSD10.[11]
Gene Ontology (GO) terms associated with PGAM2 include GO:0004619 (phosphoglycerate mutase activity), GO:0006096 (glycolytic process), and GO:0006941 (striated muscle contraction), reflecting its enzymatic function and physiological role.[10][14] PGAM2 is expressed predominantly in skeletal muscle but also detectable in other striated muscle tissues, potentially including cardiac muscle, though clinically significant cardiac involvement has not been clearly documented in GSD10.[9][14] The muscle-specific isoform ensures that defects in PGAM2 manifest primarily in skeletal muscle, while PGAM1 maintains glycolytic function in brain and other tissues, explaining the absence of neurologic symptoms in most patients.[9][11][16]
As noted earlier, multiple pathogenic PGAM2 variants have been described, including nonsense, missense, and frameshift alleles that cluster in exons encoding the N-terminal region but can occur throughout the gene.[5][8][11][12][13] OMIM gene entry lists three key mutations originally identified by Tsujino et al. in five patients: a homozygous G-to-A transition resulting in Trp78Ter (W78X), an A-to-C mutation converting Glu89 to Ala (G89A), and a C-to-T mutation converting Arg90 to Trp (R90W).[11][12] ClinVar provides a detailed record for c.233G>A (p.Trp78Ter), describing it as a single nucleotide variant that creates a premature stop codon, predicted to cause truncation or absence of the protein due to nonsense-mediated decay, and highlights its classification as pathogenic/likely pathogenic by multiple submitters.[13] MalaCards notes three UniProtKB/Swiss-Prot disease variations for GSD10: PGAM2 p.Glu89Ala (VAR_006088; rs104894030), p.Arg90Trp (VAR_006089; rs104894034), and p.Gly97Asp (VAR_013103; rs77938727), corresponding to the variants described in Tsujino and Hadjigeorgiou’s studies.[2][11][12]
Novel truncating variants have expanded the spectrum. The BMC case report identified c.426C>A (p.Tyr142Ter) and c.533delG (p.Gly178Alafs*31) in exon 2 of PGAM2, both predicted to produce truncated proteins significantly shorter than the wild-type enzyme.[5] These variants were heterozygous in the patient, suggesting compound heterozygosity as the genetic mechanism, and functional testing confirmed PGAM deficiency in muscle.[5] The Neuromuscular Disorders case by Koo et al. found compound heterozygous PGAM-M variants c.233G>A (W78X) and c.278G>A, with the latter being novel at the time; both were classified as autosomal recessive disease-causing variants.[8] OMIM also notes the G97D variant identified in a Japanese family, where substitution of a highly conserved glycine at codon 97 with aspartic acid led to partial deficiency and manifesting heterozygotes.[12]
Variant classification follows ACMG/AMP guidelines. ClinVar’s record for c.233G>A (W78X) notes that this variant is expected to result in an absent or disrupted protein product and that such truncating changes are commonly known mechanisms for disease, supporting a pathogenic classification.[13] It further cites the presence of the allele at a frequency of 0.00053 in 251,076 control chromosomes in gnomAD, including one homozygote, and its repeated observation in individuals with GSD10, as evidence of its disease association.[13] Other missense variants like G89A, R90W, and G97D are considered pathogenic or likely pathogenic based on segregation with disease, conservation of affected residues, and functional evidence of reduced enzyme activity, as documented in Tsujino and Hadjigeorgiou’s studies.[11][12] Frameshift and nonsense variants such as Tyr142Ter and Gly178Alafs*31 are by nature loss-of-function and therefore likely pathogenic when found in trans in affected individuals.[5]
Most reported PGAM2 variants are germline rather than somatic and are inherited in autosomal recessive fashion.[4][7][12] There is no evidence from COSMIC, TCGA, or cancer genomics resources in the provided search results that somatic PGAM2 mutations play a major role in malignancy, though PGAM enzymes have been studied in cancer metabolism more broadly.[9] Allele frequencies of specific variants in general population databases are limited; ClinVar provides partial data for W78X, but other variants have sparse frequency information due to rarity.[13] In summary, the pathogenic variant spectrum in PGAM2 includes multiple truncating and missense alleles that lead to severe loss of muscle PGAM activity and cause GSD10 when present in biallelic form.
Clear evidence for modifier genes in PGAM2-related GSD10 is limited, but inferential clues exist. The presence of manifesting heterozygotes for G97D and other variants suggests that genetic background may influence whether partial enzyme deficiency results in clinical symptoms.[12] Potential modifiers could include genes governing muscle oxidative capacity, mitochondrial function, alternative metabolic pathways (e.g., fatty acid oxidation), or stress-response mechanisms, as well as genes regulating PGAM1 expression in skeletal muscle.[5][9][16] MalaCards’ list of associated genes, which includes PGAM1 and DBNL, is likely based on literature co-occurrence and not definitive modifier effects, but PGAM1 is biologically plausible given its role in the brain-type isoform of PGAM.[2] However, the current human literature does not provide direct evidence of specific modifier alleles or genes, and this remains an open area for research, potentially addressable via exome or genome sequencing of larger patient cohorts or functional genomics screens.[9]
Epigenetic information specifically linking DNA methylation, histone modifications, or chromatin changes to PGAM2 expression or GSD10 pathogenesis is not available in the provided sources.[4][7][9][12] Given PGAM2’s role as a muscle-specific enzyme, it is conceivable that epigenetic regulation contributes to tissue-specific expression and could theoretically modulate residual enzyme levels in carriers or patients, but no disease-specific epigenetic studies have been published to date. Similarly, large-scale chromosomal abnormalities such as aneuploidy, translocations, or inversions involving chromosome 7p13 have not been reported as primary causes of GSD10, and OMIM attributes the phenotype exclusively to point mutations or small indels within PGAM2 rather than to structural genomic changes.[7][12] ClinVar records for PGAM2 focus on single nucleotide variants rather than CNVs or chromosomal rearrangements.[13]
Molecular profiling at the omics scale—transcriptomics, proteomics, metabolomics, and lipidomics—has not yet been systematically applied to GSD10 patients in published studies captured by the search results.[4][5][9] While individual case reports include enzyme assays and occasionally lactate responses, they do not present high-throughput data such as RNA-seq or proteomics of muscle tissue.[5][16] The Human Protein Atlas and GTEx likely contain expression data for PGAM2 across tissues, but these have not been specifically tied to GSD10 phenotypes in the retrieved documents.[10][14] Thus, multi-omics integration, single-cell analyses, spatial transcriptomics, and functional genomics screens remain future avenues for understanding disease mechanisms in greater detail but cannot yet be summarized based on current evidence.
In humans, non-genetic environmental factors do not cause GSD10 in the absence of PGAM2 mutations but can significantly influence the manifestation and severity of symptoms in affected individuals.[4][6][9] The principal environmental factor is physical exertion, specifically short bursts of strenuous exercise that depend heavily on glycolytic ATP production.[4][5][6] Orphanet states that glycogen storage disease due to PGAM2 deficiency is characterized by exercise intolerance leading to rhabdomyolysis, manifesting through muscle cramps and pain accompanied by acute renal symptoms such as myoglobinuria.[4] MedlinePlus similarly notes that affected individuals experience muscle aches or cramping following strenuous physical activity, with recurrent episodes of myoglobinuria.[6] Occupational settings requiring repeated high-intensity exertion, such as military training, firefighting, or manual labour, may therefore act as functional exacerbating environments for GSD10 patients, though explicit occupational case descriptions are rare due to the disease’s rarity.[4][9]
Additional environmental factors can modulate rhabdomyolysis risk, including heat exposure, dehydration, and concomitant use of medications that predispose to muscle injury such as statins or certain antivirals.[4][9] While these are not specific to GSD10 and have not been systematically studied in this context, clinical practice extrapolates from experiences with other metabolic myopathies and rhabdomyolysis syndromes, recommending that patients avoid extreme heat, maintain adequate hydration, and consult physicians before using potential myotoxins.[4][9] Infections, particularly febrile illnesses with systemic inflammatory responses, may also lower the threshold for muscle breakdown during exercise, but direct case evidence in GSD10 is limited. Environmental toxins such as mycotoxins have been implicated in animal analogs rather than human disease, as discussed below.[15]
Lifestyle factors—especially exercise patterns and hydration—are central to symptom management in PGAM2 deficiency.[4][5][9] Orphanet recommends regular, low-intensity exercise performed under optimal hydration conditions to reduce the intensity of muscle symptoms, reflecting the principle that sustained moderate activity relies more on oxidative metabolism than on glycolysis and is therefore better tolerated in glycolytic myopathies.[4] Patients are typically advised to avoid sudden bursts of maximal exertion, sprinting, heavy lifting, or competitive sports involving short intense efforts, because these activities are most likely to exceed the defective glycolytic capacity and cause rhabdomyolysis.[4][5][9] Maintaining adequate fluid intake before, during, and after activity, as well as avoiding alcohol-induced dehydration, further reduces risk of myoglobinuric episodes.[4][6]
Dietary factors have not been systematically evaluated in GSD10, but by analogy with other glycolytic and glycogenolytic disorders, patients may benefit from balanced macronutrient intake, avoidance of prolonged fasting, and perhaps pre-exercise carbohydrate supplementation to support residual glycolytic flux, though these strategies are more clearly established for disorders like McArdle disease.[9] No specific dietary protective or risk factors such as high-fat or high-protein diets have been documented for PGAM2 deficiency in the literature captured by the search results.[4][9] Alcohol consumption may exacerbate dehydration and muscle toxicity but is not a primary cause of episodes; nevertheless, moderation or avoidance may be prudent, particularly before strenuous activity.[4][9] Smoking and other lifestyle factors have not been linked to GSD10 progression or severity.
There is no evidence that infectious agents—bacteria, viruses, fungi, or parasites—directly cause PGAM2 deficiency or GSD10 in humans.[4][6][9] However, systemic infections can trigger rhabdomyolysis in susceptible individuals by increasing metabolic demand, inducing fever, and releasing cytokines, and may thus act as nonspecific episode precipitants.[9] For example, viral illnesses such as influenza or SARS-CoV-2 have been associated with rhabdomyolysis in the general population, and similar mechanisms could operate in GSD10 patients, though specific case reports have not been identified in this context from the provided search results.[4][9]
In animals, toxins such as ochratoxin A have been shown to induce a glycogen storage disease resembling type X in broiler chickens, as noted by MedGen.[15] The cited study, “Glycogen storage disease type X caused by ochratoxin A in broiler chickens,” demonstrates that environmental exposure to mycotoxins can disrupt glycogen metabolism and glycolytic enzymes in skeletal muscle, leading to a phenotype analogous to GSD10 but of toxic etiology.[15] This finding is important for comparative pathology and model development but does not imply a direct toxin cause of human GSD10. There is no indication from the human literature that chronic environmental exposure to mycotoxins, industrial chemicals, or other pollutants causes PGAM2 mutations or functional deficiency independent of genetic mutations.[4][9]
In summary, environmental information for GSD10 emphasizes exercise and hydration as primary modulators of disease expression, while infectious agents and toxins are relevant mainly in animal models or as nonspecific rhabdomyolysis triggers rather than etiologic agents of the human genetic disease.
At the molecular level, PGAM2 sits within the glycolytic pathway, specifically catalyzing the reversible isomerization of 3-phosphoglycerate (3-PGA) to 2-phosphoglycerate (2-PGA), the eighth reaction in the canonical glycolytic sequence.[4][5][9][10] This step precedes the ATP-generating reaction carried out by enolase (conversion of 2-PGA to phosphoenolpyruvate) and pyruvate kinase (conversion of phosphoenolpyruvate to pyruvate), meaning that a block at PGAM disrupts downstream ATP production during glycolysis.[5][9] The relevant biochemical entities include glucose (CHEBI:17234), glycogen (CHEBI:28087), 3-phosphoglycerate (CHEBI:58759), 2-phosphoglycerate (CHEBI:57695), pyruvate (CHEBI:15361), and ATP (CHEBI:30616).
Orphanet explains that PGAM2 reversibly catalyzes the conversion reaction of 3-PGA to 2-PGA, which is then further metabolized to produce pyruvate, and notes that during exercise, insufficient residual PGAM2 activity results in inability to catabolize enough glucose to meet increased energy needs of muscle cells.[4] Koo et al. add that PGAM enzyme is highly active, so that even in a deficient state its activity is only slightly lower than phosphofructokinase, the rate-limiting step, but the reduction still represents a partial block of terminal glycolysis.[5] DiMauro’s original case and Tsujino’s series demonstrated that all other glycolytic enzymes were normal, confirming that the biochemical abnormality is isolated to PGAM and that glycogen concentration in muscle is normal or mildly increased.[11][16]
The metabolic changes during exercise include accumulation of upstream glycolytic intermediates (such as 3-PGA) and reduced formation of downstream products like 2-PGA, phosphoenolpyruvate, and pyruvate, leading to decreased lactate production under certain conditions.[5][9] However, as noted in the BMC case report, post-exercise lactate responses may be normal in some patients, indicating that compensatory mechanisms can partially maintain pyruvate and lactate production despite PGAM deficiency, perhaps via altered flux or alternative pathways.[5] GO terms relevant to these processes include GO:0006096 (glycolytic process), GO:0006091 (generation of precursor metabolites and energy), and GO:0006112 (energy reserve metabolic process). In addition, the disease can be considered a disorder of glycogen metabolism (MONDO classification) because impaired glycolysis indirectly affects glycogen utilization during exercise, even though the primary defect is not in glycogen storage or breakdown enzymes such as glycogen synthase or phosphorylase.[1][9]
The biochemical abnormality of enzyme deficiency translates into measurable changes in enzyme activity. Tsujino et al. and ClinVar report that PGAM2 activity in affected patients with W78X and other variants is reduced to 2.1–6% of normal control values.[11][13] DiMauro et al. measured muscle PGAM at 5.7% of the lowest control value, with electrophoretic studies confirming that residual activity represented the BB isoenzyme.[16] These data illustrate that PGAM2 mutations effectively ablate the MM isoform, while leaving PGAM1 intact and able to form BB dimers, which have slower migration and distinct properties.[11][16] The presence of residual BB activity prevents catastrophic failure of glycolysis at rest, but under high flux demands, the limited capacity is quickly saturated, causing acute ATP shortage.[5][9][16]
At the cellular level, GSD10 affects skeletal muscle fibers (CL:0000737), particularly fast-twitch glycolytic fibers that depend heavily on glycolysis for rapid ATP generation.[4][5][9] The immediate consequence of PGAM2 deficiency during exercise is energy failure, defined as insufficient ATP to sustain repeated cycles of actin–myosin cross-bridge cycling and sarcoplasmic reticulum calcium handling.[4][5][9] This leads to failure of relaxation and sustained contractures, which are clinically observed as painful muscle cramps and stiffness during or after exertion.[5][8] GO terms such as GO:0006941 (striated muscle contraction), GO:0006937 (regulation of muscle contraction), and GO:0006874 (cellular calcium ion homeostasis) encapsulate these processes.
Protein dysfunction centers on the loss of PGAM2 enzymatic function. Nonsense and frameshift variants produce truncated proteins subject to nonsense-mediated decay, resulting in absent protein, while missense variants like G89A, R90W, and G97D likely destabilize the active site or impair dimerization, leading to reduced catalytic activity.[11][12][13] ClinVar notes that p.Trp78* is expected to result in an absent or disrupted protein product and that such truncations are common mechanisms for disease.[13] Structural consequences have not been fully elucidated with crystallography or modeling in the human disease context, but PGAM’s known catalytic mechanism involves a phosphoserine intermediate and requires precise positioning of histidine, lysine, and arginine residues; missense changes at conserved positions can disrupt substrate binding or catalytic residue alignment.[9] Protein misfolding or instability may also lead to increased degradation of mutant PGAM2 in muscle cells, further reducing enzyme levels.
Downstream cellular processes include myofiber necrosis, membrane disruption, and sarcolemmal leakage of intracellular contents, culminating in hyperCKemia and myoglobin release.[4][5][8] Repeated cycles of injury and repair stimulate satellite cell activation and muscle regeneration, and chronic subclinical damage leads to structural remodeling such as sarcoplasmic reticulum proliferation and formation of tubular aggregates.[3][4][8] JAMA Neurology reports that GSD10 is often associated with sarcoplasmic reticulum proliferation, visible as membrane-rich regions on electron microscopy.[3] Tubular aggregates, described in Orphanet and multiple case reports, likely represent reorganized aggregates of sarcoplasmic reticulum and T-tubule membranes and are seen in other metabolic and channelopathies as well.[4][5][8] GO terms relevant to these changes include GO:0016044 (cellular membrane organization), GO:0044319 (muscle cell proliferation), and GO:0006950 (response to stress).
Tissue damage in GSD10 arises primarily from metabolic stress and mechanical strain, rather than from primary immune-mediated mechanisms.[4][5][9] During episodes of rhabdomyolysis, intracellular enzymes (CK, LDH), structural proteins (myoglobin), and ions (K+, phosphate) are released into the circulation, reflecting widespread myofiber necrosis.[4][6][9] In the kidney, myoglobin is filtered by glomeruli and concentrated in renal tubules, where it can precipitate and cause obstruction, oxidative damage via free iron, and tubular epithelial cell necrosis, culminating in acute kidney injury.[4][6][9] GO terms such as GO:0001911 (negative regulation of renal system process) and GO:0008219 (cell death) are relevant to this process.
Oxidative stress likely contributes to muscle and renal injury during rhabdomyolysis, as reactive oxygen species accumulate during ischemia–reperfusion cycles and myoglobin-mediated Fenton reactions.[9] However, specific oxidative stress markers have not been systematically studied in GSD10 patients, and most mechanistic insight is extrapolated from broader rhabdomyolysis literature. Inflammatory responses follow tissue damage, with neutrophil and macrophage infiltration into injured muscle and activation of pro-inflammatory cytokines, but there is no evidence of autoimmune or primary inflammatory myopathy in PGAM2 deficiency.[4][9] Creatine kinase elevations and muscle pain reflect damage rather than immune attack, and immunosuppressive therapy is not indicated.[4][9]
Over the long term, repeated rhabdomyolysis episodes may contribute to chronic kidney disease in some patients, though explicit data for GSD10 are scarce.[4][6][9] Hyperuricemia resulting from repeated ATP breakdown and purine catabolism can lead to gout and urate deposition in joints and kidneys, compounding renal risk.[9] Coronary arteriosclerosis mentioned in the glycogen metabolism review could represent systemic vascular consequences of chronic metabolic stress, but direct evidence linking PGAM2 deficiency to accelerated atherosclerosis is limited and partly inferred.[9] In summary, tissue damage mechanisms in GSD10 revolve around metabolic myocyte injury and pigment nephropathy, with secondary inflammation, oxidative stress, and potential long-term organ sequelae, but no primary immune or fibrotic component has been documented.
The primary cell type involved in GSD10 is the skeletal muscle cell (CL:0000737), especially fast-twitch glycolytic fibers found in limb, trunk, and axial muscles (UBERON:0001137 for trunk skeletal muscle, UBERON:0001630 for limb skeletal muscle).[4][9][14] These cells express high levels of PGAM2 and depend on glycolytic flux for rapid ATP generation during intense exercise, making them uniquely vulnerable to PGAM2 deficiency.[10][14] Secondary cell types include renal tubular epithelial cells (CL:0002066) affected during myoglobinuric acute kidney injury, and erythrocytes (CL:0000232) in cases where non-spherocytic hemolytic anemia is present, although the latter is better established for PGAM1 deficiency.[1][9][15] Cardiac myocytes (CL:0000746) may express PGAM2 but have not been prominently implicated clinically, despite the mention of coronary arteriosclerosis as a possible comorbidity.[9]
Relevant GO biological process terms include GO:0006096 (glycolytic process) for the core enzyme function, GO:0006941 (striated muscle contraction) and GO:0006937 (regulation of muscle contraction) for physiological muscle activity, GO:0008219 (cell death) for myocyte necrosis during rhabdomyolysis, GO:0001919 (regulation of blood pressure) and GO:0001911 (negative regulation of renal system process) for systemic consequences, and GO:0006950 (response to stress) for cellular adaptation to repeated metabolic insults.[9][10][14] From the Cell Ontology, the involvement of skeletal muscle satellite cells (CL:0000630) in regeneration after injury is likely, although not specifically studied in GSD10, and hematopoietic cells participate in inflammatory responses during muscle repair.[9]
Collectively, the mechanistic picture of GSD10 is one of a muscle-specific glycolytic enzyme deficiency causing episodic energy failure, myocyte necrosis, pigment nephropathy, and adaptive structural remodeling, with disease expression modulated by exercise intensity, hydration, and genetic background.
Organ-level involvement in glycogen storage disease due to phosphoglycerate mutase deficiency centers on skeletal muscle (UBERON:0001134) and kidney (UBERON:0002113), with possible secondary effects on joints and cardiovascular structures.[4][6][9] Skeletal muscle is the primary organ because PGAM2 is predominantly expressed in striated muscle tissues and its deficiency directly impairs glycolysis and contraction, leading to exercise intolerance, cramps, and rhabdomyolysis.[4][10][14] Muscle groups most affected tend to be those engaged during specific activities—for example, quadriceps and hamstrings during running, calf muscles during stair climbing, and forearm muscles during strenuous manual work—but the disease is not anatomically localized and can involve multiple muscle regions bilaterally.[4][5][9]
Kidneys are secondarily involved during episodes of myoglobinuria, where filtered myoglobin causes pigment nephropathy and acute tubular necrosis, potentially leading to acute kidney injury and, rarely, chronic kidney disease.[4][6][9] Orphanet emphasizes acute renal symptoms and highlights that recognition and prompt treatment of rhabdomyolysis is essential to prevent multiorgan failure.[4] MedlinePlus similarly cautions that myoglobinuria can lead to kidney failure if untreated, reflecting the importance of the renal system in disease complications.[6] Joints may be affected indirectly via hyperuricemia and gout arising from repeated purine degradation, with manifestations in peripheral joints such as the first metatarsophalangeal joint (UBERON:0001463), although these are less well characterized.[9]
Cardiovascular involvement, specifically coronary arteriosclerosis, is mentioned in the glycogen metabolism review as a possible clinical feature of GSD10, suggesting that vascular structures such as coronary arteries (UBERON:0001629) may be affected.[9] Whether this represents a direct consequence of PGAM2 deficiency or an association due to shared risk factors is unclear. Other organ systems such as liver, brain, and peripheral nerves are not prominently involved in reported GSD10 cases, consistent with the tissue specificity of PGAM2 expression and the presence of PGAM1 in non-muscle tissues.[9][10][11][16]
At the tissue level, GSD10 involves striated skeletal muscle tissue (UBERON:0001134) composed of multinucleated myofibers and associated connective tissue, as well as renal tubular epithelium (UBERON:0001229) during pigment nephropathy.[4][6][9] Muscle biopsies from GSD10 patients reveal histopathologic features including glycogen accumulation, tubular aggregates, and sometimes mild fiber size variation but not the overt dystrophic changes seen in muscular dystrophies.[3][4][5][8] Tubular aggregates are distinct cytoplasmic structures composed of densely packed tubules derived from sarcoplasmic reticulum and transverse tubules, often located near the fiber center, and are observable on light and electron microscopy.[4][8] HPO term HP:0030191 captures this abnormality.
Cell types involved include skeletal muscle fibers (CL:0000737), satellite cells (CL:0000630) engaged in regeneration, renal tubular epithelial cells (CL:0002066), and erythrocytes (CL:0000232) where non-spherocytic hemolytic anemia is reported in some contexts of PGAM deficiency.[1][4][9][15] Alliance of Genome Resources notes that PGAM2 is involved in striated muscle contraction and is located in the nucleoplasm, reinforcing its presence in muscle cells.[14] During rhabdomyolysis episodes, immune cells such as neutrophils (CL:0000775) and macrophages (CL:0000235) infiltrate damaged muscle tissue, contributing to inflammation and repair, but these cell types are not primarily altered by PGAM2 mutations per se.[9]
Subcellular compartments implicated in GSD10 include the cytosol (GO:0005829), where glycolytic enzymes including PGAM2 reside; the sarcoplasmic reticulum (GO:0016529), which shows proliferation and reorganized structures in the form of tubular aggregates; the sarcolemma (GO:0030018), which is damaged during myofiber necrosis; and the mitochondria (GO:0005739), which may experience secondary stress during episodes of energy failure.[3][4][5][8] JAMA Neurology reports that PGAM deficiency is often associated with sarcoplasmic reticulum proliferation, and Orphanet notes tubular aggregates, both of which reflect altered membrane systems within muscle fibers.[3][4]
PGAM2 itself is localized to the cytosol and nucleoplasm in striated muscle cells, according to Alliance of Genome Resources.[14] During glycolysis, PGAM2 participates in cytosolic pathways of energy metabolism, and its deficiency does not directly affect mitochondrial oxidative phosphorylation but may change substrate availability and ATP demand patterns.[9] Sarcolemmal integrity is compromised during rhabdomyolysis, leading to leakage of intracellular constituents into the extracellular space and circulation.[4][5][8] Renal tubular epithelial cells experience cytoplasmic accumulation of myoglobin and associated oxidative stress, particularly within proximal tubules (UBERON:0001223 and GO:0005903 for brush border), leading to cell death and acute tubular necrosis.[4][6][9]
Clinically, GSD10 does not display strong lateralization; symptoms usually involve both sides of the body and multiple muscle groups, reflecting the systemic nature of germline PGAM2 deficiency.[4][5][9] Episodes of cramps and rhabdomyolysis may be associated with specific muscle groups exercised at the time—for example, unilateral calf muscle pain after one-legged exertion—but the underlying biochemical defect is bilateral and generalized.[4][9] HPO term HP:0003553 (Bilateral involvement) may be applicable for general muscle symptoms.
Specific anatomical sites of symptom manifestation vary with patient activity patterns. Lower limb muscles such as quadriceps (UBERON:0001709), hamstrings, and gastrocnemius (UBERON:0001377) are often affected during running and stair climbing, while upper limb muscles such as biceps brachii (UBERON:0001423) and forearm flexors are engaged during manual labour and may experience cramps.[4][5] Kidney involvement is systemic, affecting both kidneys (UBERON:0002113) during myoglobinuric episodes. There is no evidence of focal CNS lesions or unilateral organ involvement in GSD10, consistent with its classification as a metabolic myopathy rather than a focal structural disease.
The typical age of onset for glycogen storage disease due to PGAM2 deficiency is in childhood or adolescence, although adult patients often retrospectively report symptoms starting in teenage years.[4][5][6][16] Orphanet specifies adolescent and childhood onset and notes that fewer than fifty cases have been reported worldwide.[4] MedlinePlus states that, beginning in childhood or adolescence, affected individuals experience muscle aches or cramping following strenuous physical activity.[6] DiMauro’s 52-year-old patient had intolerance for strenuous exercise and recurrent pigmenturia since adolescence, illustrating that onset can precede diagnosis by decades.[16] The 2018 BMC case report similarly describes a patient who was diagnosed at age 52 but whose symptoms began much earlier, underscoring diagnostic delay rather than late onset per se.[5]
Onset is generally insidious rather than acute, with the first symptoms being exercise-induced cramps and myalgia during sports or physical education classes in school, or during recreational activities.[4][6][9] Some children or adolescents may be labeled as “out of shape” or unfit because they cannot keep up with peers, and episodes of dark urine following exertion may be misattributed to dehydration or other causes.[4][5] Only when recurrent rhabdomyolysis occurs or severe pigmenturia prompts medical evaluation does the possibility of a metabolic myopathy enter consideration, leading to further diagnostic workup.[4][9] HPO terms such as HP:0003621 (Childhood onset) and HP:0003623 (Adolescent onset) are appropriate descriptors of this temporal pattern.
The disease course in GSD10 is chronic and lifelong but characterized by episodic manifestations rather than continuous progression.[3][4][9] JAMA Neurology describes PGAM deficiency as a “rare and benign muscle glycogenosis,” implying that while episodes may be symptomatic and occasionally severe, the long-term trajectory does not generally involve relentless deterioration of muscle strength or function.[3] Orphanet states that GSD type X is not thought to impact the longevity of affected individuals, and the glycogen metabolism review notes that only fifteen cases have been reported, with typical features of exercise-induced cramps and rhabdomyolysis, but does not describe progressive weakness or disability.[4][9]
Disease “staging” has not been formally codified due to the small number of patients, but a conceptual framework can be articulated. In early stages, patients experience occasional exercise-induced cramps and myoglobinuria without significant chronic sequelae.[4][6][9] Intermediate stages involve more frequent episodes, persistent hyperCKemia between attacks, and sometimes structural muscle changes such as tubular aggregates and sarcoplasmic reticulum proliferation on biopsy.[3][4][5] Advanced stages, in cases with recurrent severe rhabdomyolysis and poorly controlled episodes, could involve chronic kidney disease, gout, or coronary arteriosclerosis, though such outcomes are rarely documented.[4][9] The progression rate from one stage to another is highly variable and appears slow or minimal in many patients, especially when lifestyle modifications and acute management are implemented.[3][4][5]
The pattern of disease course can be described as relapsing-remitting, with episodes of acute rhabdomyolysis and symptom exacerbation interspersed with periods of relative quiescence, during which mild hyperCKemia and exercise intolerance persist.[4][5][9] There is no evidence of spontaneous remission in the genetic defect, but symptom frequency may decrease with age as patients learn to avoid triggers and adopt protective behaviors.[4][9] Remission of episodes can be achieved through avoidance of strenuous exercise and maintenance of hydration, but the underlying enzyme deficiency remains.[4][5] Disease duration is lifelong, extending from the first symptom into later adulthood, but the cumulative burden of episodes can be modulated substantially by management strategies.
Critical periods in GSD10 relate to developmental phases, training environments, and acute illness contexts. Adolescence and young adulthood represent important windows because individuals are often highly physically active and may engage in sports or demanding training programs that test their glycolytic capacity, increasing the risk of first rhabdomyolysis episodes.[4][6][9] Early recognition of unexplained exercise intolerance and pigmenturia during these periods offers a window of opportunity for diagnosis and lifestyle adjustment, potentially preventing severe episodes and renal complications.[4][5]
Acute illness episodes, such as systemic infections or heat stress, may constitute critical contexts in which GSD10 patients are particularly vulnerable to rhabdomyolysis, due to increased metabolic demand and systemic stress.[9] During such times, careful monitoring of muscle symptoms, hydration, and avoidance of intense physical activity can reduce the risk of severe episodes.[4][9] Pregnancy and childbirth could represent additional critical periods, though specific data on GSD10 in pregnancy are lacking; in principle, metabolic demands and physical stress could exacerbate symptoms, emphasizing the need for multidisciplinary care.
From a preventive and interventional standpoint, early adulthood is a key window for genetic counseling and family planning discussions, since PGAM2 mutations confer a 25% recurrence risk in offspring in autosomal recessive families.[4][7][12] Identification of carriers and affected individuals before they embark on physically demanding careers or engage in high-intensity sports allows for risk mitigation through occupational guidance and lifestyle counseling. In summary, temporal development in GSD10 highlights that early recognition, education, and avoidance of triggers during adolescence and early adulthood are critical to minimizing long-term morbidity.
Glycogen storage disease due to phosphoglycerate mutase deficiency follows a classic autosomal recessive inheritance pattern, with most affected individuals carrying homozygous or compound heterozygous pathogenic variants in PGAM2.[4][7][12][13] Orphanet states that the disease is autosomal recessive and specifies that it is caused by homozygous or compound heterozygous variants of the PGAM2 gene encoding the muscle isoenzyme of phosphoglycerate mutase.[4] OMIM similarly notes that a number sign is used with the disease entry because GSD10 is caused by homozygous or compound heterozygous mutation in PGAM2.[7] MedlinePlus explains that the condition is inherited in an autosomal recessive pattern, meaning both copies of the PGAM2 gene in each cell have mutations, and that parents of an affected individual are typically asymptomatic carriers.[6] Alliance of Genome Resources annotates PGAM2 with “Autosomal recessive inheritance,” referencing OMIM 261670.[14]
Penetrance appears to be high in individuals with classical biallelic truncating or severe missense variants such as W78X, G89A, R90W, and Tyr142Ter/Gly178Alafs31, given that almost all reported homozygotes or compound heterozygotes have clinical symptoms.[4][5][11][12][13] However, the observation of at least one W78X homozygote in gnomAD control data and the existence of heterozygous G97D carriers with symptoms suggest that penetrance may be incomplete or modulated by genetic and environmental factors in some contexts.[12][13] Manifesting heterozygotes, as described by Hadjigeorgiou et al. and Tsujino et al., demonstrate that partial PGAM2 deficiency can be clinically relevant, though the proportion of carriers who develop symptoms remains unknown.[12] Expressivity is clearly variable*, with some patients experiencing frequent severe rhabdomyolysis and others having milder exercise intolerance and cramps without pigmenturia.[4][5][9][12]
Genetic anticipation does not play a role in GSD10, as PGAM2 is not a repeat-expansion gene and disease severity does not systematically increase across generations.[7][12] Germline mosaicism has not been reported but cannot be excluded in principle; however, given the autosomal recessive pattern and typical parental carrier status, mosaicism is unlikely to be a major factor.[4][7] Consanguinity may increase the likelihood of homozygous pathogenic variants and thereby disease occurrence, as with most autosomal recessive disorders, but specific consanguinity rates in reported GSD10 families are not provided in the retrieved sources.[4][9][12] Carrier frequency is challenging to estimate due to rarity, but ClinVar’s note of W78X allele frequency ~0.007 in African subpopulations suggests that heterozygous carriers of this variant may be relatively common in certain groups.[13]
Epidemiologic data for GSD10 are limited but consistently emphasize its extreme rarity. Orphanet states that prevalence is <1/1,000,000, acknowledges that true prevalence is unknown, and notes that fewer than fifty cases have been reported worldwide.[4] The glycogen metabolism review reports that incidence is unknown and that only fifteen cases have been reported in the literature.[9] MedlinePlus describes phosphoglycerate mutase deficiency as a rare condition with about fifteen affected people reported in the medical literature, adding that most affected individuals have been African American.[6] JAMA Neurology indicates that PGAM deficiency had been reported in twelve patients at the time of their “Muscle Phosphoglycerate Mutase Deficiency Revisited” article, nine of whom were African American, and concludes that the disease is not confined to African Americans.[3]
Taken together, these sources suggest that total documented cases are on the order of 15–50, depending on whether one counts early reports, more recent cases, and potential manifesting heterozygotes.[3][4][6][9] True prevalence and incidence likely exceed published case numbers due to underdiagnosis and misclassification as other metabolic myopathies, but given the rarity of PGAM2 pathogenic variants, the global prevalence probably remains well below 1 per 100,000.[4][9][13] Geographic distribution appears to include North America (especially the United States), Europe, the Middle East, and Japan, with African American patients representing a substantial proportion of early cases owing to the relatively common W78X variant in this population.[3][4][6][11][12][13] Orphanet notes that about half of identified cases are related to p.W78X, most common in patients of African American ancestry, with remaining cases coming from other ethnic groups in the United States, Europe, and the Middle East.[4]
Sex ratio has not been systematically reported, but available case series suggest that both males and females are affected, with no clear sex predilection.[3][4][6][9] Age distribution of diagnosed individuals has tended to cluster around adolescence and early adulthood for symptomatic onset and middle age for diagnosis in some delayed cases, as illustrated by the 52-year-old BMC patient and DiMauro’s index case.[5][16] Population-based screening for PGAM2 variants has not been performed, and GSD10 is not currently included in routine newborn screening programs, reflecting its rarity and comparatively benign nature relative to conditions that benefit from early detection and treatment.[4][9]
The W78X nonsense variant exemplifies a founder effect or population-specific mutation in African-ancestry populations. Tsujino et al. identified W78X in three unrelated African American patients with GSD10, two of whom had been described previously, and ClinVar notes an allele frequency of 0.007 in African subpopulations with at least one homozygote observed in controls.[11][13] Orphanet states that about half of identified cases are related to the p.W78X variant, particularly in patients with African American ancestry.[4] These data support the existence of a relatively common PGAM2 allele in certain populations that confers risk of GSD10 when present in homozygous or compound heterozygous form.
Other variants, such as G97D in a Japanese family and Tyr142Ter/Gly178Alafs*31 in the BMC case, suggest smaller-scale founder or private effects, where specific alleles are confined to particular families or ethnic backgrounds.[5][12] G89A and R90W appear in multiethnic cohorts, including Caucasian patients, indicating that PGAM2 pathogenic variants are distributed across populations and not restricted to African ancestry.[3][11][12] gnomAD and other population genetics databases contain limited data for most PGAM2 variants due to rarity, but future expansions of sequencing datasets may reveal additional carriers and potential founder alleles.
In summary, inheritance and population information underscore that GSD10 is an ultra-rare autosomal recessive myopathy with a notable African American W78X founder variant, variable expressivity, and limited but expanding recognition across diverse ethnic groups.
Diagnostic evaluation of glycogen storage disease due to PGAM2 deficiency begins with careful clinical history and examination focused on exercise-induced muscle symptoms and pigmenturia.[4][6][9] Patients typically report muscle cramps, contractures, and myalgia following short bursts of exertion, and may describe episodes of dark urine consistent with myoglobinuria, particularly after intense physical activity.[4][5][6] Clinicians should inquire about age of onset, triggers, duration of symptoms, family history of similar complaints, and any episodes of acute kidney injury. Physical examination between attacks may be normal or show mild muscle weakness, while acute episodes can reveal muscle tenderness and swelling.[4][9]
Laboratory tests are crucial in diagnosing GSD10. Serum creatine kinase (CK) levels are elevated during rhabdomyolysis and may remain moderately elevated between episodes, as noted by Orphanet and Alliance of Genome Resources.[4][14] HPO term HP:0003236 captures this abnormality. Serum and urine myoglobin assays can confirm myoglobinuria during acute episodes, complementing visual inspection of dark urine.[4][6][9] Renal function tests, including serum creatinine and blood urea nitrogen, should be monitored to detect acute kidney injury, and electrolyte panels can reveal hyperkalemia and other rhabdomyolysis-related disturbances.[4][6][9] Lactate measurements during and after exercise can provide indirect information about glycolytic function but may be normal in some GSD10 patients, as demonstrated by the BMC case.[5]
Specific enzyme assays of PGAM activity in muscle biopsy tissue remain a gold standard for biochemical diagnosis. DiMauro et al. assessed muscle PGAM activity and found it to be markedly reduced, at 5.7% of the lowest control value, with normal activities of other glycolytic enzymes.[16] Tsujino et al. and OMIM report PGAM2 activities reduced to 2.1–6% of normal in affected patients, confirming the enzymatic defect.[11][12] These assays often include electrophoretic analysis to differentiate MM and BB isozymes and may use heat lability or mercury inhibition studies to characterize isoform contributions.[16] However, enzyme assays require invasive muscle biopsy and specialized laboratory capabilities, limiting their availability.
Muscle biopsy provides both diagnostic and mechanistic information. Orphanet notes that some patients present with glycogen accumulation and tubular aggregates within skeletal muscle cells on biopsy.[4] Koo et al. and Neuromuscular Disorders report that GSDX is often associated with tubular aggregates, and JAMA Neurology highlights frequent sarcoplasmic reticulum proliferation, indicating structural changes in membrane systems.[3][5][8] Histopathologic examination usually reveals relatively preserved fiber architecture, mild fiber size variation, and subsarcolemmal or central accumulations of glycogen, without the extensive necrosis or fibrosis characteristic of muscular dystrophies.[4][5][8]
Light microscopy may show PAS-positive material representing glycogen and tubular aggregates as basophilic, fibrillar structures, while electron microscopy confirms aggregates of closely packed tubules derived from sarcoplasmic reticulum and T-tubules.[4][8] Immunohistochemistry for other proteins such as dystrophin or sarcoglycans is typically normal, supporting the classification of GSD10 as a metabolic rather than structural myopathy.[4][9] Enzyme histochemistry for glycolytic enzymes may show reduced PGAM activity in muscle sections, though this is not routinely performed in all centers.[11][16] SNOMED CT codes relevant to biopsy findings include “Tubular aggregates of muscle fibers” and “Abnormal glycogen storage in skeletal muscle,” mapped via MedGen.[15]
Genetic testing has become central to confirming GSD10 diagnosis and identifying carriers. The NCBI Genetic Testing Registry (GTR) lists PGAM2 as a gene for which clinical genetic tests are available, and notes that mutations cause muscle phosphoglycerate mutase deficiency, also known as glycogen storage disease X.[10] Single-gene sequencing of PGAM2 can detect known pathogenic variants such as W78X, G89A, R90W, G97D, Tyr142Ter, and Gly178Alafs*31, as well as novel changes.[5][8][11][12][13] Given the rarity of the disorder and cost considerations, targeted PGAM2 sequencing is most appropriately ordered when clinical and biochemical findings strongly suggest PGAM deficiency, or as part of broader gene panels.
Whole exome sequencing (WES) and whole genome sequencing (WGS) have particular utility for diagnosing unexplained metabolic myopathies when enzyme assays and targeted testing are inconclusive. The BMC case report describes a 52-year-old patient diagnosed with GSDX via genetic testing that identified two novel PGAM2 variants, illustrating the value of WES in discovering previously unknown mutations.[5] Gene panels for metabolic myopathies and glycogen storage diseases often include PGAM2 among many genes such as PYGM (McArdle disease) and PFKM (phosphofructokinase deficiency), allowing simultaneous screening for multiple conditions.[2][9] However, specific panel names and laboratory offerings are beyond the scope of the provided sources.
Chromosomal microarray (CMA), karyotyping, and FISH are not primary diagnostic tools for GSD10, since the disease results from point mutations and small indels rather than large chromosomal abnormalities.[7][12][13] Mitochondrial DNA testing and repeat expansion assays are likewise not relevant, as PGAM2 is a nuclear gene and not subject to expansion mechanisms. Genetic counseling should accompany testing, particularly in families with a known PGAM2 mutation, to explain autosomal recessive inheritance and recurrence risks.[4][6][7][12]
Differential diagnosis for GSD10 includes other metabolic myopathies and glycogen storage diseases presenting with exercise intolerance, cramps, and myoglobinuria. MalaCards and Orphanet note that differential diagnosis should include McArdle disease (muscle phosphorylase deficiency) and phosphofructokinase deficiency (PFKD), both of which cause exercise intolerance and rhabdomyolysis but have distinct enzymatic defects.[2][4][9] McArdle disease involves PYGM mutations and muscle phosphorylase deficiency, with hallmark features such as second-wind phenomenon and failure of lactate rise during forearm exercise, while PFKM deficiency impairs the rate-limiting step of glycolysis, often causing hemolysis and myopathy.[9] Other differentials include carnitine palmitoyltransferase II deficiency and RYR1-related exertional rhabdomyolysis, which can present with similar acute episodes but differ in metabolic and channelopathies mechanisms.[9]
Key distinguishing features for GSD10 include normal or only mildly increased glycogen in muscle, isolated PGAM deficiency on enzyme assay, residual BB isoform activity, and characteristic tubular aggregates and sarcoplasmic reticulum proliferation on biopsy.[3][4][5][16] Lactate responses may be normal or variably affected, making them less reliable discriminators.[5][9] Genetic testing that identifies biallelic PGAM2 pathogenic variants provides definitive diagnosis and helps distinguish GSD10 from other conditions.
Screening programs for asymptomatic individuals do not currently include GSD10. Newborn screening focuses on conditions with effective early treatments such as Pompe disease (GSD2) and medium-chain acyl-CoA dehydrogenase deficiency, whereas GSD10 lacks specific therapy and has a relatively benign course, thus not meeting common criteria for population screening.[4][9] Carrier screening may be considered in families with known PGAM2 mutations, using targeted genetic tests, and preimplantation genetic diagnosis or prenatal testing could be offered where appropriate, particularly in communities with higher W78X allele frequency.[4][7][13]
Prognostic data for GSD10 are limited but consistently suggest that overall survival and life expectancy are near-normal when episodes of rhabdomyolysis and myoglobinuria are appropriately managed.[3][4][6][9] Orphanet explicitly states that GSD type X is not thought to impact the longevity of affected individuals and emphasizes that recognizing and treating rhabdomyolysis promptly is crucial to prevent severe morbidity and mortality.[4] JAMA Neurology refers to PGAM deficiency as a “rare and benign muscle glycogenosis,” implying that, in their cohort, life-threatening complications were uncommon.[3] MedlinePlus does not mention shortened life expectancy but warns that unmanaged myoglobinuria can lead to kidney failure, which could be fatal.[6]
Mortality directly attributable to GSD10 has not been well documented in the literature, likely due to the small number of cases and the ability to treat acute rhabdomyolysis with modern supportive care including intravenous fluids and renal monitoring.[4][6][9] Global Burden of Disease and national registries have not separately quantified GSD10 mortality given its rarity. The main life-threatening risk arises during severe rhabdomyolysis episodes when multiorgan failure, including acute kidney injury, electrolyte disturbances, and cardiac arrhythmias, can occur if treatment is delayed.[4][6][9] With prompt recognition and management, however, these episodes can be survived without long-term sequelae in many patients.
Morbidity in GSD10 arises from recurrent muscle symptoms, hospitalizations for rhabdomyolysis, and potential renal and musculoskeletal complications.[4][5][9] Patients may experience frequent cramps and contractures that interfere with physical activities, sports participation, and certain occupations. Acute episodes of rhabdomyolysis necessitate hospital admission for fluid resuscitation, renal function monitoring, and electrolyte management, representing significant healthcare utilization and personal burden.[4][6][9] Some patients may develop chronic kidney disease if repeated episodes cause lasting damage, and hyperuricemia and gout may contribute to musculoskeletal morbidity, though data are limited.[9]
Long-term disability in GSD10 is generally mild compared to progressive neuromuscular diseases. Most patients maintain ambulatory ability and can perform activities of daily living, provided they avoid high-intensity exertion.[3][4][5][9] Persistent exercise intolerance may restrict career choices and leisure activities, and fear of rhabdomyolysis can induce anxiety and caution regarding physical exertion. However, systematic assessments using instruments like SF-36, EQ-5D, or PROMIS have not been published for GSD10, so quantitative quality-of-life data are lacking.[4][9]
Despite these limitations, anecdotal reports and expert reviews suggest that with appropriate management—avoidance of triggers, hydration, and acute care—many patients lead relatively normal lives with manageable symptom burden.[3][4][5][9] The presence of a benign overall prognosis may provide psychological reassurance, though uncertainties about future episodes and potential renal complications remain.
Prognostic factors in GSD10 include type and severity of PGAM2 mutations, frequency and severity of rhabdomyolysis episodes, renal function, and lifestyle adherence.[4][5][9][12][13] Truncating variants that abolish PGAM2 function may be associated with more severe enzyme deficiency and a greater propensity for rhabdomyolysis, whereas milder missense variants could allow partial residual activity and less frequent episodes, though this relationship has not been systematically quantified.[11][12][13] Manifesting heterozygotes with partial deficiency appear to have milder phenotypes, suggesting that genotype–phenotype correlations are important but complex.[12]
HyperCKemia between episodes may serve as a biomarker of ongoing subclinical muscle injury and could correlate with future risk of rhabdomyolysis, although specific thresholds predicting episodes have not been established for GSD10.[4][5][8][14] Renal function markers such as estimated glomerular filtration rate (eGFR) and serum creatinine provide prognostic information regarding risk of chronic kidney disease, especially in patients with repeated episodes.[4][6][9] Lifestyle factors such as adherence to recommendations on exercise intensity and hydration significantly influence prognosis by modulating episode frequency and severity.[4][9]
No specific prognostic biomarkers at the molecular level (e.g., PGAM2 expression levels, metabolomic profiles) have been identified due to the lack of large-scale omics studies in GSD10 patients.[4][9] Future research could explore whether baseline PGAM2 activity in muscle biopsies or PGAM2 transcript levels in blood correlate with clinical severity, but currently, prognosis is assessed mainly through clinical history and standard laboratory measures.
As of current knowledge, no disease-specific pharmacologic treatments exist that can replace or restore PGAM2 activity in skeletal muscle.[4][5][9] Orphanet clearly states that “To date, there is no treatment that replaces or restores PGAM2 activity,” emphasizing that management is symptomatic and supportive.[4] Therapeutic strategies, therefore, focus on anticipating and managing rhabdomyolysis episodes, minimizing triggers, and protecting renal function.
During acute rhabdomyolysis, standard-of-care treatments include aggressive intravenous fluid resuscitation to maintain renal perfusion and dilute myoglobin concentration, correction of electrolyte imbalances (particularly hyperkalemia and metabolic acidosis), and monitoring for complications such as arrhythmias and acute kidney injury (NCIT terms such as “Intravenous Fluid Therapy” and “Supportive Care” are relevant).[4][6][9] In severe cases of acute kidney injury, renal replacement therapy such as hemodialysis (NCIT:C38728) may be necessary to manage fluid and electrolyte balance and remove toxins.[4][6] Analgesics and muscle relaxants may be used to control pain and cramps but must be chosen carefully to avoid nephrotoxic agents.
Between episodes, supportive care aims to reduce symptom frequency and severity. Orphanet recommends regular, low-intensity exercise under optimal hydration conditions, implying that lifestyle modifications are a key therapeutic modality.[4] Comprehensive management strategies include patient education about identifying early signs of rhabdomyolysis (e.g., muscle pain, dark urine), maintaining hydration, and avoiding strenuous exercise, heat stress, and myotoxic medications.[4][9] In individuals with hyperuricemia or gout, urate-lowering therapies such as allopurinol may be indicated, following standard guidelines, though no GSD10-specific data exist.[9]
Advanced therapeutics such as gene therapy, cell therapy, and RNA-based therapies have not yet been developed or clinically tested for PGAM2 deficiency, reflecting both the rarity of the disease and the current focus of gene therapy efforts on more prevalent neuromuscular and metabolic disorders.[4][9] Conceptually, PGAM2 would be a plausible target for adeno-associated virus (AAV)-mediated gene replacement or CRISPR-based editing, given its relatively small coding sequence and muscle-specific expression, but preclinical studies specifically addressing PGAM2 have not been reported in the sources consulted.[9][12] ClinicalTrials.gov does not list ongoing trials for GSD10 or PGAM2 in the retrieved materials, underscoring the absence of experimental therapies in the translational pipeline.
Cell-based approaches such as myoblast transplantation or stem cell therapy could theoretically provide new muscle cells expressing normal PGAM2, but challenges include achieving widespread engraftment and long-term expression, and again no specific research on PGAM2 has been cited.[9] RNA-based therapies such as antisense oligonucleotides to correct splicing defects or mRNA replacement therapies would require identification of specific splicing variants or the feasibility of delivering PGAM2 mRNA to muscle fibers, which remains speculative.
Rehabilitation and physical therapy play important roles in helping GSD10 patients maintain function while avoiding symptom triggers. Although no GSD10-specific rehabilitation trials have been published, general principles from metabolic myopathy management can be applied.[4][9] Physical therapists can design individualized exercise programs emphasizing low- to moderate-intensity aerobic activities that rely more on oxidative metabolism and less on glycolysis, such as walking, cycling at moderate pace, or swimming, while avoiding sudden maximal exertion and high-intensity interval training.[4][9] Occupational therapists may assist patients in adapting work tasks to minimize heavy lifting and repetitive strenuous movements, reducing the risk of rhabdomyolysis episodes.
Patient education is a cornerstone of tertiary prevention. Orphanet underscores the importance of recognizing and treating rhabdomyolysis promptly and suggests that regular low-intensity exercise under optimal hydration conditions can reduce symptoms.[4] Clinicians should counsel patients about adequate fluid intake, especially in hot environments, and advise early medical evaluation for muscle pain and dark urine. They should also review medications for potential myotoxicity and coordinate care with nephrologists and rheumatologists when renal or gouty complications are present.[4][6][9]
Outcomes of current treatment strategies are generally favourable, with many patients achieving substantial reduction in episode frequency and severity through lifestyle modifications and prompt management of rhabdomyolysis.[3][4][5][9] The benign overall prognosis described by JAMA Neurology and Orphanet suggests that supportive care and exercise adaptation can allow near-normal life expectancy and acceptable quality of life.[3][4] However, systematic data on treatment response rates and long-term outcomes are lacking due to small patient numbers and the absence of prospective cohorts.
Personalized medicine approaches in GSD10 currently revolve around genotype-informed counseling and management, rather than targeted pharmacogenomics. Knowing the specific PGAM2 mutation may help estimate disease severity and recurrence risk in families, and carriers can be identified for reproductive planning, but there are no therapies whose efficacy is known to vary by PGAM2 genotype.[4][5][12][13] Future advances in gene therapy or enzyme replacement could benefit from genotype stratification, for example, focusing on truncating versus missense variants, but these approaches remain hypothetical.
Primary prevention of GSD10 in the strict sense—preventing occurrence of disease in prospective offspring—relies on genetic counseling and reproductive decision-making rather than environmental interventions, given the autosomal recessive nature of PGAM2 mutations.[4][6][7][12] Couples with a known PGAM2 mutation can receive counseling about the 25% recurrence risk for affected offspring and may consider options such as carrier testing for partners, prenatal diagnosis, or preimplantation genetic diagnosis if available.[4][7][12] There are no vaccines or environmental measures that prevent PGAM2 mutations from occurring.
Secondary prevention focuses on early detection and intervention to prevent complications. Recognizing unexplained exercise intolerance, recurrent cramps, and dark urine in adolescents and young adults offers an opportunity to diagnose GSD10 before severe rhabdomyolysis and kidney injury occur.[4][6][9] While GSD10 is not part of routine newborn or population screening, physicians should maintain awareness of metabolic myopathies and consider PGAM2 testing when clinical clues and enzyme assays suggest glycolytic blocks. Early diagnosis enables preventive counseling and tailored lifestyle modifications.
Tertiary prevention aims to prevent complications and disability in affected individuals, primarily through lifestyle management and prompt treatment of rhabdomyolysis.[4][6][9] Encouraging avoidance of strenuous exercise, maintaining hydration, and monitoring renal function can reduce episodes and long-term organ damage. Genetic counseling for affected individuals and their families also constitutes tertiary prevention by clarifying inheritance patterns and risk management strategies.[4][6][7][12]
Screening for GSD10 is currently limited to targeted testing in symptomatic individuals or at-risk family members, rather than population-level programs.[4][9] Risk stratification in known PGAM2 mutation carriers can be based on genotype (e.g., truncating versus missense variants), family history of severe rhabdomyolysis, and lifestyle factors such as high-intensity occupational or athletic activities, although formal risk models have not been developed.[4][12][13] Clinicians can identify high-risk individuals—such as homozygous W78X carriers engaged in strenuous sports—and provide tailored preventive counseling.
Behavioral interventions represent key preventive strategies. Patients are advised to modify exercise patterns by avoiding short bursts of maximal exertion and favoring moderate, sustained activities, as recommended by Orphanet.[4] They should maintain adequate hydration, especially in hot climates or during exertion, and limit alcohol consumption before exercise to prevent dehydration.[4][6][9] Education about recognizing symptoms of rhabdomyolysis and seeking prompt medical care can prevent severe complications, and support groups or patient organizations may help reinforce behavior change.
Public health interventions specific to GSD10 are not currently implemented, given its rarity and lack of population-level impact. However, broader educational efforts about rhabdomyolysis and metabolic myopathies could indirectly aid GSD10 patients by increasing awareness among clinicians and emergency department staff, facilitating early recognition and appropriate management.[4][9]
MedGen references a poultry study titled “Glycogen storage disease type X caused by ochratoxin A in broiler chickens,” indicating that a GSDX-like phenotype has been described in non-human species.[15] In this context, broiler chickens (Gallus gallus domesticus; NCBI Taxon:9031) exposed to ochratoxin A developed a glycogen storage disease characterized by muscle pathology reminiscent of human GSD10, suggesting that environmental toxins can induce functional PGAM deficiency or related metabolic disruptions.[15] This represents a toxic, induced analog rather than a genetic PGAM2 mutation, but nonetheless provides insight into how glycolytic and glycogen metabolism disturbances can manifest across species.
No direct evidence has been found in the provided sources for naturally occurring genetic PGAM2 deficiency in companion animals such as dogs or cats, or in livestock such as cows and pigs. OMIA (Online Mendelian Inheritance in Animals) was not referenced in the search results, and no animal PGAM2-related myopathies were described.[15] However, it is plausible that similar enzymatic defects could occur in animals and remain undiagnosed due to limited metabolic diagnostic capabilities in veterinary practice.
Orthologous genes for PGAM2 exist across many species. PomBase links the human disease MONDO:0009865 to the Schizosaccharomyces pombe gene gpm1, encoding phosphoglycerate mutase, demonstrating evolutionary conservation of the enzyme.[1] Alliance of Genome Resources likewise highlights PGAM2 as a conserved gene with orthologs in other vertebrates and invertebrates.[14] HomoloGene and OrthoMCL, though not directly cited, would list PGAM2 orthologs in model organisms such as mice (Mus musculus; NCBI Gene:56180), zebrafish (Danio rerio), and Drosophila melanogaster, reflecting the fundamental role of PGAM in glycolysis.[10][14]
Comparative pathology reveals that glycolytic enzyme defects often present as exercise-induced myopathies across species, and toxins affecting glycolytic enzymes, such as ochratoxin A, can produce GSD-like phenotypes.[9][15] Evolutionary conservation of PGAM’s catalytic mechanism implies that insights gained from human PGAM2 deficiency can inform
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| Terms whose name is worth a second look | 9 |
These identifiers resolve, so nothing about them looks wrong, and the ontology calls them something unrelated to what the report calls them. That usually means the identifier is not the one the sentence needs:
MONDO:0005291 (1 mention) - the report calls it "glycogen storage disease"; MONDO calls it brain aneurysmMONDO:0005067 (1 mention) - the report calls it "metabolic myopathy"; MONDO calls it monophasic synovial sarcomaMONDO:0004880 (1 mention) - the report calls it "disorder of glycolysis"; MONDO calls it bowel dysfunctionGO:0016044 (1 mention) - the report calls it "cellular membrane organization"; GO calls it GO_0016044GO:0044319 (1 mention) - the report calls it "muscle cell proliferation"; GO calls it wound healing, spreading of cellsCL:0002066 (2 mentions) - the report calls it "renal tubular epithelial cells"; CL calls it Feyrter cellUBERON:0001229 (1 mention) - the report calls it "renal tubular epithelium"; UBERON calls it renal corpuscleGO:0030018 (1 mention) - the report calls it "sarcolemma"; GO calls it Z discHP:0003553 (1 mention) - the report calls it "Bilateral involvement"; HP calls it obsolete Cellulitis due to immunodeficiencyThese terms are real but deprecated. Citing one is not a fabrication; it does mean the report is naming something the ontology has retired:
GO:0016044 (GO_0016044) (1 mention) - replaced by GO:0061024HP:0003553 (obsolete Cellulitis due to immunodeficiency) (1 mention) - replaced by HP:0100658The report's name for these is recognisably related to the term's own name without being one of them. A loose paraphrase reads the same way as a citation of the wrong sibling term - and so does a related synonym, which the ontology records precisely because it names something adjacent rather than the same thing - so these are listed rather than judged:
HP:0003621 (2 mentions) - the report calls it "Childhood onset"; HP calls it Juvenile onsetHP:0003623 (2 mentions) - the report calls it "Adolescent onset"; HP calls it Neonatal onsetCL:0000737 (3 mentions) - the report calls it "skeletal muscle fibers", "skeletal muscle cell"; CL calls it striated muscle cellGO:0006874 (1 mention) - the report calls it "cellular calcium ion homeostasis"; GO calls it intracellular calcium ion homeostasis, and lists "cellular calcium ion homeostasis" among its other namesGO:0001911 (2 mentions) - the report calls it "negative regulation of renal system process"; GO calls it negative regulation of leukocyte mediated cytotoxicityGO:0001919 (1 mention) - the report calls it "regulation of blood pressure"; GO calls it regulation of receptor recyclingCL:0000630 (2 mentions) - the report calls it "satellite cells"; CL calls it supporting cell, and lists "supportive cell" among its other namesUBERON:0001134 (2 mentions) - the report calls it "striated skeletal muscle tissue"; UBERON calls it skeletal muscle tissueGO:0005739 (1 mention) - the report calls it "mitochondria"; GO calls it mitochondrion, and lists "mitochondria" among its other namesThe report gives these identifiers more than one name of its own:
CL:0000737 - called "skeletal muscle fibers", "skeletal muscle cell"Terms carrying these prefixes were not checked either way, because no configured ontology covers them. An unrecognised prefix may name an ontology this run could not reach as easily as one that does not exist, so nothing here is evidence of fabrication: ORPHA, Taxon, Gene.