THE ROLE OF OXIDATIVE PHOSPHORYLATION IN MITOCHONDRIA IN CELL VIABILITY
Keywords:
Oxidative phosphorylation, mitochondria, cellular energy, circadian rhythms, aging, biological clock.Abstract
The work is devoted to the study of the role of oxidative phosphorylation (OP) in maintaining cell viability. A hypothesis is proposed that increasing the efficiency of OP in mitochondria can contribute to prolongation of cell life and stabilization of circadian rhythms. The mechanisms linking energy metabolism with the expression of "clock" genes and aging are discussed. The importance of mitochondrial metabolism as a potential target in the therapy of age-related and metabolic disorders is emphasized.
References
López-Otín C., Blasco M.A., Partridge L., Serrano M., Kroemer G. The hallmarks of aging // Cell. - 2013. - Vol. 153(6). - P. 1194-1217.
DOI: 10.1016/j.cell.2013.05.039
García-Ruiz C., Fernández-Checa J.C. Mitochondrial oxidative stress and aging //Ageing Research Reviews. - 2025. - Vol. 88. DOI: 10.1016/j.arr.2025.101068
Jacobi D., Liu S., Burkewitz K., et al. Hepatic Bmal1 regulates rhythmic mitochondrial dynamics and promotes metabolic fitness // Cell Metabolism. - 2015. - Vol. 22(4). - P. 709-720. DOI: 10.1016/j.cmet.2015.08.006
Peek C.B., Affinati A.H., Ramsey K.M., et al. Circadian clock NAD+ cycle drives mitochondrial oxidative metabolism in mice // Science. - 2013. - Vol. 342(6158). - P. 1243417. DOI: 10.1126/science.1243417
Wang Y., Hekimi S. Mitochondrial function and lifespan of mice with controlled ubiquinone biosynthesis // Nature Communications. 2016. Vol. 7. — Article 11771. DOI: 10.1038/ncomms11771
Zhang Y., Liu T., Zhou X. Mitochondrial dysfunction in cardiovascular diseases: mechanisms and therapy // Signal Transduction and Targeted Therapy. - 2024. - Vol. 9, Article 132. DOI: 10.1038/s41392-024-01839-8
Бабун Н. А., Ковальчук В. А. Сердечная недостаточность и митохондриальная дисфункция // Acta Biomedica Scientifica. - 2022. - Т. 7, № 2. - С. 50–58.DOI: 10.12737/ABM.2022.29.
Киселёв Д. И. Нефосфорилирующее окисление в митохондриях и его регуляция // Биохимия. — 2020. — Т. 85, № 12. — С. 1549–1572.
DOI: 10.31857/S032097252012009X.
Свободные от кристы митохондрии — хит сезона // БиоМолекула. — 2023. — URL: https://biomolecula.ru/articles/svobodnye-ot-kristy-mitokhondrii-khit-sezona (дата обращения: 14.05.2025).
Zhang Y., Liu T., Zhou X. Mitochondrial dysfunction in cardiovascular diseases: mechanisms and therapy // Signal Transduction and Targeted Therapy. — 2024. — Vol. 9, Article 132.
DOI: 10.1038/s41392-024-01839-8.
Patel A., Huang M. Oxidative phosphorylation and its emerging role in stem cell differentiation // Cell. — 2025. — Vol. 188, Issue 9. — P. 1752–1767.
DOI: 10.1016/j.cell.2024.04.012.
García-Ruiz C., Fernández-Checa J.C. Mitochondrial oxidative stress and aging//Ageing Research Reviews. 2025. Vol. 88.
DOI: 10.1016/j.arr.2025.101068.
Petrovic M., Altmann M. Time to update textbooks on electron transport chain in mitochondria // Phys.org. — 2025. — URL: https://phys.org/news/2025-02-textbooks-electron-chain-mitochondria.html (дата обращения: 14.05.2025).
Downloads
Published
Issue
Section
License
Copyright (c) 2025 Абдурашидов Абдумажид Алишер угли, Туйчиева Дилфуза Сидикжановна

This work is licensed under a Creative Commons Attribution 4.0 International License.