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Rapamycin Rescues Age-Related Changes in Muscle-Derived Stem/Progenitor Cells from Progeroid Mice
Yohei Kawakami, William S. Hambright, Koji Takayama, Xiaodong Mu, Aiping Lu, James H. Cummins, Tomoyuki Matsumoto, Takashi Yurube, Ryosuke Kuroda, Masahiro Kurosaka, Freddie H. Fu, Paul D. Robbins, Laura J. Niedernhofer, Johnny Huard
Molecular Therapy — Methods & Clinical Development · 2019 · ▲ 49 citations
Deregulated nutrient-sensing
Cellular senescence
Stem-cell exhaustion
Altered intercellular communication
Rapamycin / mTOR inhibition
Partial reprogramming (OSK)
Mouse
Abstract
Aging-related loss of adult stem cell function contributes to impaired tissue regeneration. Mice deficient in zinc metalloproteinase STE24 ( Zmpste24 −/− ) exhibit premature age-related musculoskeletal pathologies similar to those observed in children with Hutchinson-Gilford progeria syndrome (HGPS). We have reported that muscle-derived stem/progenitor cells (MDSPCs) isolated from Zmpste24 −/− mice are defective in their proliferation and differentiation capabilities in culture and during tissue regeneration. The mechanistic target of mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) complex 1 (mTORC1) regulates cell growth, and inhibition of the mTORC1 pathway extends the lifespan of several animal species. We therefore hypothesized that inhibition of mTORC1 signaling would rescue the differentiation defects observed in progeroid MDSPCs. MDSPCs were isolated from Zmpste24 −/− mice, and the effects of mTORC1 on MDSPC differentiation and function were examined. We found that mTORC1 signaling was increased in senescent Zmpste24 −/− MDSPCs, along with impaired chondrogenic, osteogenic, and myogenic differentiation capacity versus wild-type MDSPCs. Interestingly, we observed that mTORC1 inhibition with rapamycin improved myogenic and chondrogenic differentiation and reduced levels of apoptosis and senescence(definition) in Zmpste24 −/− MDSPCs. Our results demonstrate that age-related adult stem/progenitor cell dysfunction contributes to impaired regenerative capacities and that mTORC1 inhibition may represent a potential therapeutic strategy for improving differentiation capacities of senescent stem and muscle progenitor cells.
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- 10.1016/j.omtm.2019.05.011
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- 2026-08-02 MST
Cite this
APA
Kawakami, Y., Hambright, W.S., Takayama, K., Mu, X., Lu, A., Cummins, J.H., Matsumoto, T., Yurube, T., Kuroda, R., Kurosaka, M., Fu, F.H., Robbins, P.D., Niedernhofer, L.J., & Huard, J. (2019). Rapamycin Rescues Age-Related Changes in Muscle-Derived Stem/Progenitor Cells from Progeroid Mice. <em>Molecular Therapy — Methods & Clinical Development</em>. https://doi.org/10.1016/j.omtm.2019.05.011
Vancouver
Kawakami Y, Hambright WS, Takayama K, Mu X, Lu A, Cummins JH, et al. Rapamycin Rescues Age-Related Changes in Muscle-Derived Stem/Progenitor Cells from Progeroid Mice. Molecular Therapy — Methods & Clinical Development. 2019. doi:10.1016/j.omtm.2019.05.011.
BibTeX
@article{yohei2019Rapamy,
title = {Rapamycin Rescues Age-Related Changes in Muscle-Derived Stem/Progenitor Cells from Progeroid Mice},
author = {Yohei Kawakami and William S. Hambright and Koji Takayama and Xiaodong Mu and Aiping Lu and James H. Cummins and Tomoyuki Matsumoto and Takashi Yurube and Ryosuke Kuroda and Masahiro Kurosaka and Freddie H. Fu and Paul D. Robbins and Laura J. Niedernhofer and Johnny Huard},
journal = {Molecular Therapy — Methods & Clinical Development},
year = {2019},
doi = {10.1016/j.omtm.2019.05.011},
}
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