Combined oxidative phosphorylation deficiency 42

disease
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Also known as COXPD42

Summary

Combined oxidative phosphorylation deficiency 42 (MONDO:0030008) is a disease with 1 cohort gene.

At a glance

  • Cohort genes: 1
  • ClinVar variants: 3

Clinical features

No curated clinical features (Orphanet) for this disease.

Identifiers

Disease identifiers

FieldValue
Canonical namecombined oxidative phosphorylation deficiency 42
Mondo IDMONDO:0030008
OMIM618839
DOIDDOID:0112118
UMLSC5394237
MedGen1709379
GARD0025506
Is cancer (heuristic)no

Also known as: COMBINED OXIDATIVE PHOSPHORYLATION DEFICIENCY 42 · combined oxidative phosphorylation deficiency 42 · COXPD42

Data availability: 3 ClinVar variants · 1 GenCC gene-disease record.

Disease family

Classification path: disease › human disease › disease by developmental or physiological process › metabolic diseasedevelopmental anomaly of metabolic origininborn mitochondrial metabolism disordermitochondrial oxidative phosphorylation disordercombined oxidative phosphorylation deficiencycombined oxidative phosphorylation deficiency 42

Related subtypes (57): severe X-linked mitochondrial encephalomyopathy, hepatoencephalopathy due to combined oxidative phosphorylation defect type 1, combined oxidative phosphorylation defect type 2, fatal mitochondrial disease due to combined oxidative phosphorylation defect type 3, combined oxidative phosphorylation defect type 4, hypotonia with lactic acidemia and hyperammonemia, combined oxidative phosphorylation defect type 7, combined oxidative phosphorylation defect type 8, combined oxidative phosphorylation defect type 9, mitochondrial hypertrophic cardiomyopathy with lactic acidosis due to MTO1 deficiency, combined oxidative phosphorylation defect type 11, leukoencephalopathy-thalamus and brainstem anomalies-high lactate syndrome, combined oxidative phosphorylation defect type 13, combined oxidative phosphorylation defect type 14, combined oxidative phosphorylation defect type 15, infantile hypertrophic cardiomyopathy due to MRPL44 deficiency, combined oxidative phosphorylation defect type 17, growth and developmental delay-hypotonia-vision impairment-lactic acidosis syndrome, combined oxidative phosphorylation deficiency 19, combined oxidative phosphorylation defect type 20, combined oxidative phosphorylation defect type 21, mitochondrial proton-transporting ATP synthase complex deficiency, combined oxidative phosphorylation defect type 23, combined oxidative phosphorylation defect type 24, combined oxidative phosphorylation defect type 25, combined oxidative phosphorylation defect type 26, combined oxidative phosphorylation defect type 27, combined oxidative phosphorylation deficiency 28, combined oxidative phosphorylation deficiency 29, combined oxidative phosphorylation defect type 30, lethal left ventricular non-compaction-seizures-hypotonia-cataract-developmental delay syndrome, combined oxidative phosphorylation deficiency 40, combined oxidative phosphorylation deficiency 41, combined oxidative phosphorylation deficiency 43, combined oxidative phosphorylation deficiency 44, combined oxidative phosphorylation deficiency 52, combined oxidative phosphorylation deficiency 53, combined oxidative phosphorylation deficiency 54, combined oxidative phosphorylation deficiency 37, combined oxidative phosphorylation deficiency 38, combined oxidative phosphorylation deficiency 39, combined oxidative phosphorylation deficiency 45, combined oxidative phosphorylation deficiency 46, combined oxidative phosphorylation deficiency 47, combined oxidative phosphorylation deficiency 48, combined oxidative phosphorylation deficiency 51, combined oxidative phosphorylation deficiency 32, combined oxidative phosphorylation deficiency 33, combined oxidative phosphorylation deficiency 34, combined oxidative phosphorylation deficiency 35, combined oxidative phosphorylation deficiency 36, combined oxidative phosphorylation deficiency 55, combined oxidative phosphorylation deficiency 56, combined oxidative phosphorylation deficiency 57, combined oxidative phosphorylation deficiency 58, combined oxidative phosphorylation deficiency 59, combined oxidative phosphorylation deficiency 60

Genetics & variants

GWAS landscape

No GWAS associations recorded — common-variant (GWAS) studies don’t cover this disease (typical for Mendelian / rare diseases). See the curated gene cohort and Mendelian overlap below.

Variant details and genetic-evidence tiers

ClinVar germline variants

3 retrieved; paginated sample, class counts are floors:

1 uncertain significance, 1 conflicting classifications of pathogenicity, 1 pathogenic

ClinVarVariant (HGVS)GeneClassificationReview
559417NM_176818.3(GATC):c.233T>G (p.Met78Arg)LOC112163529Pathogeniccriteria provided, single submitter
3779687NM_176818.3(GATC):c.82-7C>TGATCConflicting classifications of pathogenicitycriteria provided, conflicting classifications
2432060NM_176818.3(GATC):c.128T>C (p.Leu43Pro)GATCUncertain significancecriteria provided, single submitter

Genes & proteins

Mendelian disease overlap and somatic drivers

GenCC: 2 · Orphanet: 0 · OMIM-shared: 0 · Dual-evidence (GWAS+Mendelian): 0

GenCC gene–disease validity (cohort genes)

the Disease column is the GenCC-asserted condition — a cohort gene’s strongest validity may be for a related predisposition syndrome.

GeneClassificationInheritanceDiseaseRecords
GATCLimitedUnknowncombined oxidative phosphorylation deficiency 422

Cohort genes → proteins

1 cohort genes, 1 distinct canonical proteins.

Evidence partition

SubsetGenes
multi_evidence1

Cohort genes (full)

SymbolHGNCEnsemblUniProtNameEvidence
GATCHGNC:25068ENSG00000257218O43716Glutamyl-tRNA(Gln) amidotransferase subunit C, mitochondrialgencc,clinvar

Cohort function summary

Lead sentence per gene, UniProt-curated.

SymbolProtein nameFunction (lead sentence)
GATCGlutamyl-tRNA(Gln) amidotransferase subunit C, mitochondrialAllows the formation of correctly charged Gln-tRNA(Gln) through the transamidation of misacylated Glu-tRNA(Gln) in the mitochondria.

Protein-family classification

Druggable: 1 · Difficult: 0 · Unknown: 0 · Druggable fraction: 1.0

Family distribution

Cohort families vs a genome-wide background (hypergeometric, BH-FDR; fold = observed/expected). Counts kept; sorted by enrichment, so the catch-all Other/Unknown bucket no longer leads.

FamilyGenesFoldFDR
Enzyme (other)112.0×0.083

Per-gene assignment

SymbolFamilyDruggable?ECInterPro (top 3)
GATCEnzyme (other)yes6.3.5.7GatC, Asp/Glu-ADT_sf_sub_c

Expression context

Cohort genes with no expression data: 0.

1 cohort gene are a single-cell marker in ≥1 SCXA experiment.

Breadth distribution (Bgee present_calls)

BucketGenes
narrow (1-5 tissues)0
moderate (6-20)0
broad (>20)1
unknown0

Top tissues across cohort

TissueCohort genes
globus pallidus1
medial globus pallidus1
tendon of biceps brachii1

Per-gene tissue summary (top 30)

SymbolBgee breadthFANTOM5 breadthSCXATop tissues
GATC258ubiquitousmarkertendon of biceps brachii, medial globus pallidus, globus pallidus

Protein interactions among cohort

Intra-cohort edges: 0.

Hub genes (top 10 by interactor count)

SymbolInteractor count
GATC1,044

Structural data

PDB: 0 · AlphaFold-only: 1 · No structure: 0

AlphaFold-only cohort genes (top 30 by pLDDT)

SymbolUniProtpLDDT
GATCO4371678.61

Function

Pathway analysis

Distinct Reactome pathways touched by cohort: 0. Enrichment computed across 1 evidence-associated genes (0 with Reactome annotation).

GO biological processes by enrichment

Over-representation of cohort genes vs the genome-wide background (hypergeometric test, Benjamini-Hochberg FDR; fold = observed/expected over 1 annotated cohort genes). Counts and members are kept as ground-truth; sorted by enrichment.

GO termCohort genesFoldFDRSample cohort genes
glutaminyl-tRNAGln biosynthesis via transamidation15617.3×4e-04GATC
regulation of translational fidelity13370.4×4e-04GATC
mitochondrial translation1173.7×0.006GATC

Therapeutics

Drug target analysis

Approved (phase 4): 0 · Phase ≥3: 0 · Phased (≥1): 0 · Undrugged: 1

Druggability breadth: 0 of 1 evidence-associated genes (0%) have a ChEMBL target (buckets above are over the deeply-mined display cohort).

Top cohort targets by molecule count

SymbolMoleculesMax phase
GATC00

Bioactivity and enzyme data

Enzyme cohort genes (≥1 EC): 1.

Cohort enzymes (BRENDA EC)

SymbolEC numbersNames
GATC6.3.5.7glutaminyl-tRNA synthase (glutamine-hydrolysing)

Pharmacogenomics

Cohort genes with a PharmGKB record: 1; with CPIC/DPWG dosing guidelines: 0.

No cohort gene has a CPIC/DPWG genotype-guided dosing guideline (PharmGKB).

Chemical tractability of cohort targets

0 approved/phased compounds have measured bioactivity against a cohort gene (and aren’t yet in disease-level trials). This is a research / tractability signal, NOT a therapeutic recommendation — a bioactivity row often reflects off-target or screening binding (e.g. promiscuous kinase inhibitors against a cohort kinase), implying no disease mechanism.

Druggability pyramid

Cohort genes binned by druggability tier (high → low):

TierDefinitionGenesSymbols
AApproved (phase 4 drug)0
BPhased (≥1) drug, not yet approved0
CDruggable family + PDB, no drug0
DDruggable family + AlphaFold only, no drug1GATC
EDifficult family or no structure, no drug0

Undrugged target profiles

1 cohort genes are undrugged. Ranked by ‘starting-point quality’ (assay depth + drugged-partner adjacency).

SymbolChEMBL assaysDrugged partners (top 3)
GATC0

Clinical trials & evidence

Clinical trials

Clinical trials: 0.