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Unlike dietary restriction, rapamycin fails to extend lifespan and reduce transcription stress in progeroid DNA repair‐deficient mice
María B. Birkisdóttir, Dick Jaarsma, Renata M. C. Brandt, Sander Barnhoorn, Nicole van Vliet, Sandra Imholz, Conny T. van Oostrom, Bhawani Nagarajah, Eliana Portilla-Fernández, Anton J.M. Roks, Ype Elgersma, Harry van Steeg, José A. Ferreira, Jeroen L. A. Pennings, Jan H.J. Hoeijmakers
Aging Cell · 2021 · ▲ 35 citations
Genomic instability
Deregulated nutrient-sensing
Altered intercellular communication
Caloric restriction
Rapamycin / mTOR inhibition
Mouse
Abstract
Abstract Dietary restriction (DR) and mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) extend healthspan(definition) and life span across multiple species. We have recently shown that DR in progeroid DNA repair‐deficient mice dramatically extended healthspan and trippled life span. Here, we show that rapamycin, while significantly lowering mTOR signaling, failed to improve life span nor healthspan of DNA repair‐deficient Ercc1 ∆/− mice, contrary to DR tested in parallel. Rapamycin interventions focusing on dosage, gender, and timing all were unable to alter life span. Even genetically modifying mTOR signaling failed to increase life span of DNA repair‐deficient mice. The absence of effects by rapamycin on P53 in brain and transcription stress in liver is in sharp contrast with results obtained by DR, and appoints reducing DNA damage and transcription stress as an important mode of action of DR, lacking by rapamycin. Together, this indicates that mTOR inhibition does not mediate the beneficial effects of DR in progeroid mice, revealing that DR and rapamycin strongly differ in their modes of action.
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- DOI
- 10.1111/acel.13302
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- 2026-06-13 MST
Cite this
APA
Birkisdóttir, M.B., Jaarsma, D., Brandt, R.M.C., Barnhoorn, S., Vliet, N.V., Imholz, S., Oostrom, C.T.V., Nagarajah, B., Portilla-Fernández, E., Roks, A.J., Elgersma, Y., Steeg, H.V., Ferreira, J.A., Pennings, J.L.A., Hoeijmakers, J.H., Vermeij, W.P., & Dollé, M.E. (2021). Unlike dietary restriction, rapamycin fails to extend lifespan and reduce transcription stress in progeroid DNA repair‐deficient mice. <em>Aging Cell</em>. https://doi.org/10.1111/acel.13302
Vancouver
Birkisdóttir MB, Jaarsma D, Brandt RMC, Barnhoorn S, Vliet NV, Imholz S, et al. Unlike dietary restriction, rapamycin fails to extend lifespan and reduce transcription stress in progeroid DNA repair‐deficient mice. Aging Cell. 2021. doi:10.1111/acel.13302.
BibTeX
@article{mara2021Unlike,
title = {Unlike dietary restriction, rapamycin fails to extend lifespan and reduce transcription stress in progeroid DNA repair‐deficient mice},
author = {María B. Birkisdóttir and Dick Jaarsma and Renata M. C. Brandt and Sander Barnhoorn and Nicole van Vliet and Sandra Imholz and Conny T. van Oostrom and Bhawani Nagarajah and Eliana Portilla-Fernández and Anton J.M. Roks and Ype Elgersma and Harry van Steeg and José A. Ferreira and Jeroen L. A. Pennings and Jan H.J. Hoeijmakers and Wilbert P. Vermeij and Martijn E.T. Dollé},
journal = {Aging Cell},
year = {2021},
doi = {10.1111/acel.13302},
}
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