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Low-dose rapamycin extends lifespan in a mouse model of mtDNA depletion syndrome
Stephanie Siegmund, Hua Yang, Rohit Sharma, Martin A. Javors, Owen S. Skinner, Vamsi K. Mootha, Michio Hirano, Eric A. Schon
Human Molecular Genetics · 2017 · ▲ 94 citations
Mitochondrial dysfunction
Altered intercellular communication
Disabled macroautophagy
Rapamycin / mTOR inhibition
Partial reprogramming (OSK)
Mouse
Abstract
Mitochondrial disorders affecting oxidative phosphorylation (OxPhos) are caused by mutations in both the nuclear and mitochondrial genomes. One promising candidate for treatment is the drug mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition), which has been shown to extend lifespan in multiple animal models, and which was previously shown to ameliorate mitochondrial disease in a knock-out mouse model lacking a nuclear-encoded gene specifying an OxPhos structural subunit (Ndufs4). In that model, relatively high-dose intraperitoneal rapamycin extended lifespan and improved markers of neurological disease, via an unknown mechanism. Here, we administered low-dose oral rapamycin to a knock-in (KI) mouse model of authentic mtDNA disease, specifically, progressive mtDNA depletion syndrome, resulting from a mutation in the mitochondrial nucleotide salvage enzyme thymidine kinase 2 (TK2). Importantly, low-dose oral rapamycin was sufficient to extend Tk2KI/KI mouse lifespan significantly, and did so in the absence of detectable improvements in mitochondrial dysfunction(definition). We found no evidence that rapamycin increased survival by acting through canonical pathways, including mitochondrial autophagy(definition). However, transcriptomics and metabolomics analyses uncovered systemic metabolic changes pointing to a potential 'rapamycin metabolic signature.' These changes also implied that rapamycin may have enabled the Tk2KI/KI mice to utilize alternative energy reserves, and possibly triggered indirect signaling events that modified mortality through developmental reprogramming. From a therapeutic standpoint, our results support the possibility that low-dose rapamycin, while not targeting the underlying mtDNA defect, could represent a crucial therapy for the treatment of mtDNA-driven, and some nuclear DNA-driven, mitochondrial diseases.
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- 10.1093/hmg/ddx341
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- 2026-08-05 MST
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APA
Siegmund, S., Yang, H., Sharma, R., Javors, M.A., Skinner, O.S., Mootha, V.K., Hirano, M., & Schon, E.A. (2017). Low-dose rapamycin extends lifespan in a mouse model of mtDNA depletion syndrome. <em>Human Molecular Genetics</em>. https://doi.org/10.1093/hmg/ddx341
Vancouver
Siegmund S, Yang H, Sharma R, Javors MA, Skinner OS, Mootha VK, et al. Low-dose rapamycin extends lifespan in a mouse model of mtDNA depletion syndrome. Human Molecular Genetics. 2017. doi:10.1093/hmg/ddx341.
BibTeX
@article{stephanie2017Lowdos,
title = {Low-dose rapamycin extends lifespan in a mouse model of mtDNA depletion syndrome},
author = {Stephanie Siegmund and Hua Yang and Rohit Sharma and Martin A. Javors and Owen S. Skinner and Vamsi K. Mootha and Michio Hirano and Eric A. Schon},
journal = {Human Molecular Genetics},
year = {2017},
doi = {10.1093/hmg/ddx341},
}
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