Metabolic Lab · DeCure for X

DeCure for Mitochondrial complex II deficiency, nuclear type 1

DeCure's autonomous Metabolic AI scientist is researching a drug-repurposing hypothesis for mitochondrial complex II deficiency, nuclear type 1 — screening already-approved drugs against its 4-gene Open Targets disease module to publish open-access research. Research is fast; the path to publication is funded in milestone stages.

Disease module4 genesLead labMetabolic
All cures
MetabolicDOID:0060537$DeCureMetabolic

The disease map

Disease moduleMitochondrial complex II deficiency, nuclear type 1 maps to a 4-gene Open Targets module — the target space DeCure's AI scientist screens approved drugs against.
DeCure.ai methodSignature reversal (LINCS) plus network proximity (STRING) rank already-approved drugs likely to perturb this module — the same engine that produces DeCure.ai's repurposing hypotheses.
Repurposing thesisScreening approved medicines against this disease module, then publishing the evidence for the strongest candidate. Known pharmacology and human exposure data make the first question sharper — they do not establish safety or efficacy in a new indication.

Research record

01
ResearchComing soon
Candidate research + dossier — target rationale, drug-repurposing thesis and evidence pack.proof: Published dossier + on-chain hash
02
ValidationComing soon
In-vitro biological validation at a contract research org (CRO).proof: CRO contract + in-vitro report
03
Peer review & paperComing soon
Peer-reviewed paper published open-access (preprint + journal).proof: DOI + open-access link + on-chain hash

Current lead

No approved-drug candidate for mitochondrial complex ii deficiency, nuclear type 1 is corroborated in the literature DeepSearch retrieved. Some conditions are managed with non-pharmacological care — a device, surgery or physical therapy — rather than a medicine; that may be the case here, or the literature we found may simply be too sparse yet to support a drug-repurposing angle.

What the evidence adds up to

Two unrelated patients with documented complex V deficiency were studied in 2004. Mutation analysis of five nuclear genes (ATP11, ATP12, ATPalpha, ATPbeta, ATPgamma) and two mitochondrial genes (MTATP6, MTAT8) found a mutation in the ATP12 assembly gene in one patient. The authors stated this was the first report of a pathogenic mutation in a human nuclear encoded ATPase assembly gene. No treatment was tested or proposed in that study.

A 2024 review of nuclear gene variants causing mitochondrial complex III deficiency notes that complex III deficiencies are the least common among oxidative phosphorylation defects. The review states that improved clinical diagnosis and next-generation sequencing have expanded the number of identified pathological variants, but it does not report any therapeutic interventions or outcomes for any specific nuclear gene defect.

A 2004 paper on cationic mitochondriotropic vesicles for DNA delivery to mitochondria states that no satisfactory treatment is available for the vast majority of patients with mitochondrial DNA defects. The authors describe a strategy using dequalinium-based vesicles called DQAsomes to deliver DNA directly to mitochondria, but they present only data on the delivery system itself, not on any disease model or patient. No clinical application, survival data, or response rates are reported.

What is missing for mitochondrial complex II deficiency, nuclear type 1 specifically: no abstract in this set addresses that disease. No clinical trial, no patient data, no animal model results, and no proposed drug or gene therapy for that exact condition are described. The gap is not just money or trial design — the basic preclinical work linking any intervention to this particular nuclear gene defect has not been reported in these papers.

Evidence

Retrieved by DeepSearch across 234,678,978 indexed works and resolved on OpenAlex — ranked by citations, including the results that did not work.

Journal of Medical Genetics · 2004 · 199 citations · open access

Respiratory chain complex V deficiency due to a mutation in the assembly gene <i>ATP12</i>

AbstractIn patients with mitochondrial encephalomyopathies an increasing number of causative gene defects have been detected. The number of identified pathogenic mitochondrial DNA mutations has largely increased over the past 15 years. Recently, much attention has turned to the investigation of nuclear oxidative phosphorylation (OXPHOS) gene defects. Within the OXPHOS defects, complex V deficiency is rarely found and, so far, these defects have only been attributed to mutations in the mitochondrial MTATP6 gene. Mutation analysis of the complete coding regions at the cDNA level of the nuclear ATP11, ATP12, ATPalpha, ATPbeta and ATPgamma genes and the mitochondrial MTATP6 and MTAT8 genes was undertaken in two unrelated patients. Blue Native polyacrylamide gel electrophoresis followed by catalytic staining had already documented their complex V decreased activity. Extensive molecular analysis of five nuclear and two mitochondrial genes revealed a mutation in the ATP12 assembly gene in one patient. This mutation is believed to be the cause of the impaired complex V activity. To our knowledge, this is the first report of a pathogenic mutation in a human nuclear encoded ATPase assembly gene.

https://doi.org/10.1136/jmg.2003.012047
Journal of Inherited Metabolic Disease · 2024 · 9 citations · open access

Pathological variants in nuclear genes causing mitochondrial complex <scp>III</scp> deficiency: <scp>An</scp> update

AbstractMitochondrial disorders are a group of clinically and biochemically heterogeneous genetic diseases within the group of inborn errors of metabolism. Primary mitochondrial diseases are mainly caused by defects in one or several components of the oxidative phosphorylation system (complexes I-V). Within these disorders, those associated with complex III deficiencies are the least common. However, thanks to a deeper knowledge about complex III biogenesis, improved clinical diagnosis and the implementation of next-generation sequencing techniques, the number of pathological variants identified in nuclear genes causing complex III deficiency has expanded significantly. This updated review summarizes the current knowledge concerning the genetic basis of complex III deficiency, and the main clinical features associated with these conditions.

https://doi.org/10.1002/jimd.12751
Molecular Therapy · 2004 · 2 citations · open access

683. Cationic Mitochondriotropic Vesicles for DNA Delivery to Mitochondria

AbstractThe number of diseases found to be associated with defects of the mitochondrial genome has grown significantly since 1988. Despite major advances in understanding mtDNA defects at the genetic and biochemical level, there is no satisfactory treatment available for a vast majority of patients. Objective limitations of conventional biochemical treatment for patients with defects of mtDNA warrant the exploration of gene therapeutic approaches. Two different strategies for mitochondrial gene therapy are imaginable1 The first involves expressing a wild-type copy of the defective gene in the nucleus, with cytoplasmic synthesis and subsequent targeting of the gene product to the mitochondria (“allotopic expression”). Besides the different codon usage in mitochondria, however, there are possibly four major difficulties in adapting this nuclear-cytosolic approach for mitochondrial gene therapy to mammalian cells2. First, the majority of mtDNA defects involve tRNAs and to date, no natural mechanism has been reported for the mitochondrial uptake of cytosolic tRNAs in mammalian cells. Second, it is generally agreed that the thirteen proteins encoded for by mtDNA are very hydrophobic peptides, which would not be readily imported by the mitochondrial protein import machinery. However, since the 13 mitochondrial coded proteins are not equally hydrophobic, the allotopic expression of at least some of the peptides appears as possible3. Third, it has been hypothesized that some of the proteins encoded by the mitochondrion may potentially be toxic if synthesized in the cytosol4. Fourth, according to a hypothesis termed co-location for redox regulation5, the co-location of mtDNA and its products may be essential for the rapid control of gene expression by the redox state in the mitochondrial matrix. Considering all problems associated with the nuclear-cytosolic approach the development of methods for the direct transfection of mitochondria6 as an alternative approach towards mitochondrial gene therapy seems highly warranted. We have developed a strategy for mitochondrial gene therapy which involves the transport of a DNA-mitochondrial leader sequence peptide conjugate to mitochondria using cationic mitochondriotropic vesicles, the liberation of this conjugate from the cationic vector upon contact with the mitochondrial outer membrane followed by DNA uptake via the mitochondrial protein import machinery. For the design of cationic mitochondriotropic vesicles we have utilized the self-assembly behavior of dequalinium, a cationic single-chain bola-amphiphile which is known to selectively accumulate in mitochondria. We found that such bola-amphiphiles are able to form liposome-like cationic vesicles (“bolasomes”), which we termed “DQAsomes” when prepared from dequalinium7,8. Data will be presented showing that DQAsomes fulfill all essential prerequisites for a mitochondria-specific DNA delivery system.

https://doi.org/10.1016/j.ymthe.2004.06.574

Disease module: DeepOracle (Open Targets). Structures: RDKit from PubChem SMILES. Literature: retrieved by DeepSearch across 234,678,978 indexed works (targeted per-candidate search), resolved on OpenAlex.

DeCure is a research and publication project, not medical advice and not a treatment. "DeCure for X" describes a research goal, not a claim that a cure exists. Backing a cure is a contribution to fund the research — it is not an investment, and confers no yield, royalty, equity or IP ownership. Papers are published open-access by the DeCure.ai DAO.