Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease.
A, P., I, B.D., C, M., P, v.d.M., & N, B. (2026). Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease.. Circulation research. https://doi.org/10.1161/CIRCRESAHA.126.328769
A P, I BD, C M, P vdM, N B. Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease.. Circulation research. 2026; doi: 10.1161/CIRCRESAHA.126.328769
A P, I BD, C M, et al. Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease.[J]. Circulation research. 2026. DOI: 10.1161/CIRCRESAHA.126.328769.
@article{a2026,
author = {Papadaki A and Braga Dias I and Maack C and van der Meer P and Bomer N},
title = {Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease.},
journal = {Circulation research},
year = {2026},
doi = {10.1161/CIRCRESAHA.126.328769},
note = {PMID: 42594166},
}
TY - JOUR AU - Papadaki A AU - Braga Dias I AU - Maack C AU - van der Meer P AU - Bomer N TI - Shifting the Balance: Mitochondrial Heteroplasmy as a Driver of Cardiac Disease. T2 - Circulation research PY - 2026 DO - 10.1161/CIRCRESAHA.126.328769 AN - PMID:42594166 ER -
Mitochondrial heteroplasmy represents a fundamental determinant of mitochondrial function and disease, yet its consequences vary across different tissues. Although mitotic tissues possess mechanisms, such as cell division and mitochondrial turnover, to dilute or remove deleterious variants, postmitotic tissues lack this renewal capacity and are disproportionately vulnerable. Neuromuscular and neurodegenerative disorders have illustrated the impact of heteroplasmic mutations, but the (postmitotic) heart remains underexplored. Current reliance on blood-derived samples provides only an indirect view of cardiac heteroplasmy, highlighting the need for alternative approaches, such as endomyocardial biopsies and human induced pluripotent stem cell-derived cardiomyocytes. Expanding cardiac-focused research is essential for identification, clarifying pathogenesis, improving risk stratification, and guiding patient monitoring. Emerging therapies, including mitochondrial transplantation and mitochondrial-targeted DNA editing, demonstrate potential to modulate heteroplasmy and restore equilibrium. Integrating these strategies with precision medicine will be vital for addressing tissue-specific vulnerabilities. Ultimately, bridging the gap in cardiac heteroplasmy research will be critical for translating basic mitochondrial biology into meaningful clinical advances.