DeCure for Mitochondrial complex I deficiency, nuclear type 6
DeCure's autonomous Metabolic AI scientist is researching a drug-repurposing hypothesis for mitochondrial complex I deficiency, nuclear type 6 — screening already-approved drugs against its 1-gene Open Targets disease module to publish open-access research. Research is fast; the path to publication is funded in milestone stages.
Disease moduleMitochondrial complex I deficiency, nuclear type 6 maps to a 1-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 i deficiency, nuclear type 6 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
Fifteen children with isolated, nuclear-encoded complex I deficiency presented a rather homogeneous clinical picture of severe, early-childhood neurodegenerative disease. Live-cell studies on patient-derived skin fibroblasts pointed to a central regulatory role of cellular reactive oxygen species production and altered mitochondrial membrane potential in the pathogenesis. The results indicated apparent differences to drug therapy at the cellular level depending on the severity of the catalytic defect, and identified modulators of cellular calcium homeostasis as new candidates for therapy. No clinical trial data from these candidates were reported.
Subsequent reviews described cellular and animal models for complex I deficiency, focusing on the NDUFS4 subunit. Mouse models for nuclear DNA-encoded complex I deficiency, including tissue-specific knock-outs, were discussed as necessary for studying the toxicity, pharmacokinetics and therapeutic potential of compounds before human clinical trials. The first successful treatment trials had been carried out only in patient-derived cell lines, using chemical compounds that target cellular aberrations induced by complex I dysfunction.
A 2024 update on pathological variants in nuclear genes causing mitochondrial complex III deficiency noted that complex III deficiencies are the least common among primary mitochondrial diseases. The number of identified pathological variants had expanded significantly due to next-generation sequencing, but the review concerned complex III, not complex I. A 2004 paper described a strategy for mitochondrial gene therapy using cationic mitochondriotropic vesicles (DQAsomes) to deliver DNA directly to mitochondria, but this was a method development report with no patient data.
What is still missing is any completed or ongoing clinical trial of a specific drug for nuclear type 6 mitochondrial complex I deficiency. The cellular findings on calcium modulators have not been translated into human studies. No animal model data on these modulators have been published in the provided abstracts. The gene therapy approach remains at the pre-clinical design stage. Patient stratification by the severity of the catalytic defect, which the 2008 study suggested might determine drug response, has not been incorporated into any trial design. Funding for such trials is not mentioned.
Evidence
Retrieved by DeepSearch across 234,678,978 indexed works and resolved on OpenAlex — ranked by citations, including the results that did not work.
Brain · 2008 · 318 citations · open access
Mitochondrial complex I deficiency: from organelle dysfunction to clinical disease
AbstractMitochondria are essential for cellular bioenergetics by way of energy production in the form of ATP through the process of oxidative phosphorylation. This crucial task is executed by five multi-protein complexes of which mitochondrial NADH:ubiquinone oxidoreductase or complex I is the largest and most complicated one. During recent years, mutations in nuclear genes encoding structural subunits of complex I have been identified as a cause of devastating neurodegenerative disorders with onset in early childhood. Here, we present a comprehensive overview of clinical, biochemical and cell physiological information of 15 children with isolated, nuclear-encoded complex I deficiency, which was generated in a joint effort of clinical and fundamental research. Our findings point to a rather homogeneous clinical picture in these children and drastically illustrate the severity of the disease. In extensive live cell studies with patient-derived skin fibroblasts we uncovered important cell physiological aspects of complex I deficiency, which point to a central regulatory role of cellular reactive oxygen species production and altered mitochondrial membrane potential in the pathogenesis of the disorder. Moreover, we critically discuss possible interconnections between clinical signs and cellular pathology. Finally, our results indicate apparent differences to drug therapy on the cellular level, depending on the severity of the catalytic defect and identify modulators of cellular Ca(2+) homeostasis as new candidates in the therapy of complex I deficiency.
Cellular and animal models for mitochondrial complex I deficiency: A focus on the NDUFS4 subunit
AbstractTo allow the rational design of effective treatment strategies for human mitochondrial disorders, a proper understanding of their biochemical and pathophysiological aspects is required. The development and evaluation of these strategies require suitable model systems. In humans, inherited complex I (CI) deficiency is one of the most common deficiencies of the mitochondrial oxidative phosphorylation system. During the last decade, various cellular and animal models of CI deficiency have been presented involving mutations and/or deletion of the Ndufs4 gene, which encodes the NDUFS4 subunit of CI. In this review, we discuss these models and their validity for studying human CI deficiency.
Journal of Inherited Metabolic Disease · 2010 · 31 citations · open access
Mouse models for nuclear DNA‐encoded mitochondrial complex I deficiency
AbstractMitochondrial diseases are a group of heterogeneous pathologies with decreased cellular energy production as a common denominator. Defects in the oxidative phosphorylation (OXPHOS) system, the most frequent one in humans being isolated complex I deficiency (OMIM 252010), underlie this disturbed-energy generation. As biogenesis of OXPHOS complexes is under dual genetic control, with complex II being the sole exception, mutations in both nuclear DNA (nDNA) and mitochondrial DNA (mtDNA) are found. Increasing knowledge is becoming available with respect to the pathophysiology and cellular consequences of OXPHOS dysfunction. This aids the rational design of new treatment strategies. Recently, the first successful treatment trials were carried out in patient-derived cell lines. In these studies chemical compounds were used that target cellular aberrations induced by complex I dysfunction. Before the field of human clinical trials is entered, it is necessary to study the effects of these compounds with respect to toxicity, pharmacokinetics and therapeutic potential in suitable animal models. Here, we discuss two recent mouse models for nDNA-encoded complex I deficiency and their tissue-specific knock-outs.
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.
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.
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.
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