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Updated: May 1, 2026

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
MicroRNA-29 induces cellular senescence in aging muscle through multiple signaling pathways
Zhaoyong Hu1, Janet D Klein, William E Mitch
1Renal Division, Department of Medicine, Emory University, Atlanta, GA 30322, USA.
Abstract:
The mechanisms underlying the development of aging-induced muscle atrophy are unclear. By microRNA array and individual qPCR analyses, we found significant up-regulation of miR-29 in muscles of aged rodents vs. results in young. With aging, p85α, IGF-1 and B-myb muscle levels were lower while the expression of certain cell arrest proteins (p53, p16 and pRB) increased. When miR-29 was expressed in muscle progenitor cells (MPC), their proliferation was impaired while SA-βgal expression increased signifying the development of senescence. Impaired MPC proliferation resulted from interactions between miR-29 and the 3'-UTR of p85a, IGF-1 and B-myb, suppressing the translation of these mediators of myoblast proliferation. In vivo, electroporation of miR-29 into muscles of young mice suppressed the proliferation and increased levels of cellular arrest proteins, recapitulating aging-induced responses in muscle. A potential stimulus of miR-29 expression is Wnt-3a since we found that exogenous Wnt-3a stimulated miR-29 expression 2.7-fold in primary cultures of MPCs. Thus, aging-induced muscle senescence results from activation of miR-29 by Wnt-3a leading to suppressed expression of several signaling proteins (p85α, IGF-1 and B-myb) that act coordinately to impair the proliferation of MPCs contributing to muscle atrophy. The increase in miR-29 provides a potential mechanism for aging-induced sarcopenia.
Insights
Aging increases miR-29, a microRNA that impairs muscle progenitor cell proliferation by suppressing key growth factors. This process, potentially triggered by Wnt-3a, contributes to age-related muscle atrophy and sarcopenia.
Area of Science:
- Molecular Biology
- Gerontology
- Muscle Physiology
Background:
- Aging-induced muscle atrophy (sarcopenia) mechanisms remain poorly understood.
- Cellular senescence and impaired muscle regeneration are hallmarks of aging muscle.
Purpose of the Study:
- To investigate the role of microRNA-29 (miR-29) in aging-related muscle atrophy.
- To elucidate the molecular pathways linking miR-29 to impaired muscle progenitor cell function.
Main Methods:
- MicroRNA array and quantitative PCR (qPCR) in aged and young rodent muscles.
- In vitro studies using muscle progenitor cells (MPCs) with miR-29 expression.
- In vivo electroporation of miR-29 into young mouse muscles.
- Analysis of protein and gene expression, including cell cycle regulators and signaling molecules.
Main Results:
- miR-29 expression is significantly upregulated in aged muscles.
- miR-29 overexpression in MPCs impairs proliferation, increases senescence markers (SA-βgal), and reduces levels of p85α, IGF-1, and B-myb.
- In vivo miR-29 delivery to young mouse muscle recapitulates aging-induced changes.
- Wnt-3a stimulates miR-29 expression in MPCs.
Conclusions:
- Wnt-3a-induced miR-29 activation contributes to aging-related muscle senescence and atrophy.
- miR-29 suppresses key proliferative signaling proteins (p85α, IGF-1, B-myb), impairing MPC function.
- Increased miR-29 represents a potential mechanism driving age-related sarcopenia.
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