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Updated: Jan 22, 2026

Evaluation of Injury-induced Senescence and In Vivo Reprogramming in the Skeletal Muscle
Published on: October 26, 2017
Hsp90β interacts with MDM2 to suppress p53-dependent senescence during skeletal muscle regeneration
Min Yi He1,2, Shui Bo Xu1,2, Zi Hao Qu1
1Department of Biochemistry and Molecular Biology, Department of Orthopaedic Surgery of the Second Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, China.
Abstract:
Cellular senescence plays both beneficial and detrimental roles in embryonic development and tissue regeneration, while the underlying mechanism remains elusive. Recent studies disclosed the emerging roles of heat-shock proteins in regulating muscle regeneration and homeostasis. Here, we found that Hsp90β, but not Hsp90α isoform, was significantly upregulated during muscle regeneration. RNA-seq analysis disclosed a transcriptional elevation of p21 in Hsp90β-depleted myoblasts, which is due to the upregulation of p53. Moreover, knockdown of Hsp90β in myoblasts resulted in p53-dependent cellular senescence. In contrast to the notion that Hsp90 interacts with and protects mutant p53 in cancer, Hsp90β preferentially bound to wild-type p53 and modulated its degradation via a proteasome-dependent manner. Moreover, Hsp90β interacted with MDM2, the chief E3 ligase of p53, to regulate the stability of p53. In line with these in vitro studies, the expression level of p53-p21 axis was negatively correlated with Hsp90β in aged mice muscle. Consistently, administration of 17-AAG, a Hsp90 inhibitor under clinical trial, impaired muscle regeneration by enhancing injury-induced senescence in vivo. Taken together, our finding revealed a previously unappreciated role of Hsp90β in regulating p53 stability to suppress senescence both in vitro and in vivo.
Insights
Heat-shock protein 90 beta (Hsp90β) suppresses cellular senescence by stabilizing wild-type p53. This finding reveals a novel mechanism regulating muscle regeneration and aging.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- Cellular senescence has complex roles in development and regeneration.
- Heat-shock proteins (HSPs) are increasingly recognized for their roles in muscle homeostasis and regeneration.
Purpose of the Study:
- To investigate the role of heat-shock protein 90 beta (Hsp90β) in muscle regeneration.
- To elucidate the mechanism by which Hsp90β regulates cellular senescence and p53 stability.
Main Methods:
- Studied Hsp90β expression during muscle regeneration.
- Utilized RNA sequencing (RNA-seq) and knockdown of Hsp90β in myoblasts.
- Investigated Hsp90β interaction with wild-type p53 and MDM2.
- Analyzed p53-p21 axis in aged mice and after Hsp90 inhibition in vivo.
Main Results:
- Hsp90β, but not Hsp90α, was upregulated during muscle regeneration.
- Hsp90β depletion led to p53-dependent cellular senescence via p21 upregulation.
- Hsp90β preferentially bound to wild-type p53, promoting its proteasomal degradation via MDM2.
- Hsp90 inhibition impaired muscle regeneration and enhanced senescence in vivo.
Conclusions:
- Hsp90β plays a critical role in suppressing cellular senescence by regulating p53 stability.
- Hsp90β's interaction with wild-type p53 and MDM2 is key to maintaining muscle homeostasis.
- Targeting Hsp90 may impact muscle regeneration and age-related decline.
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