Inherited mitochondrial cardiomyopathies arise from pathogenic variants affecting oxidative phosphorylation, mitochondrial DNA maintenance, cardiolipin remodeling, protein import, cofactor metabolism, and mitochondrial dynamics or proteostasis. These disorders may be cardiac-predominant or part of multisystem disease. Their overlapping cardiac phenotypes suggest convergence on interacting pathways of energetic stress, cristae disruption, calcium imbalance, and redox injury, but do not establish a universal requirement for defective mitophagy. Mitochondrial quality control encompasses protein surveillance, membrane remodeling, dynamics, biogenesis, and organelle disposal; mitophagy is one component. We critically examine the hypothesis that inadequate clearance of damaged mitochondria contributes to progression in a subset of genotypes and disease stages. Disease-specific studies provide support in selected Barth syndrome models, whereas findings in frataxin deficiency vary with model and assay. We distinguish mitochondrial delivery to lysosomes, dynamic turnover measurements, and changes in pathway markers, and identify indirect evidence from acquired heart disease and fatty acid oxidation deficiency. Therapeutic evidence is separated into cellular, animal, and human studies and approved indications. Elamipretide has accelerated approval for muscle-strength improvement in patients with Barth syndrome weighing at least 30 kg; cardiac disease modification remains unconfirmed. Gene replacement has reached early clinical testing, including adeno-associated virus-mediated frataxin gene delivery (AAV-FXN), whereas mitochondrial genome editing and selective mitophagy modulation remain investigational. We propose testable predictions addressing progression, selective rescue, and treatment timing, together with outcomes that would challenge the hypothesis. This framework supports genotype- and stage-specific investigation without assuming that enhanced mitophagy will benefit every mitochondrial cardiomyopathy.
Chung‐Lin Lee, Chih‐Kuang Chuang, Ya-Hui Chang et al.· International Journal of Mol...· 0 citations
Inherited mitochondrial cardiomyopathies arise from pathogenic variants that disrupt oxidative phosphorylation, mitochondrial DNA maintenance, cardiolipin biogenesis, or mitochondrial dynamics and quality control. Although the causative genes are diverse—mtDNA mutations, nuclear respiratory-chain and assembly factors, TAZ in Barth syndrome, FXN in Friedreich ataxia, AGK in Sengers syndrome—the resulting cardiac disease converges on a shared endpoint: bioenergetic insufficiency with cristae destabilization, calcium mishandling, redox imbalance, and failure of mitophagy-dependent quality control. We synthesize how these distinct lesions funnel into common pathways of hypertrophy, fibrosis, and arrhythmogenesis, and argue that this convergence, rather than any single gene, defines the actionable therapeutic space. Mapping treatment onto these nodes, we discuss cardiolipin-directed stabilization with elamipretide—approved for Barth syndrome in 2025—gene-replacement and editing strategies (AAV-delivered TAZ and FXN, mitochondrial base editing), and cofactor, substrate-bypass, and mitophagy-modulating approaches. We propose a falsifiable central hypothesis with testable predictions, and confront the field’s principal obstacles: genetic heterogeneity requiring patient stratification, an apparent fibrotic ceiling on reversibility, and mitochondrial delivery barriers. Positioning mitochondrial quality control as the mechanistic hinge, we outline a stratified, mechanism-guided route toward cardiac-specific therapy.