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Filamin A cooperates with the androgen receptor in preventing skeletal muscle senescence
Marzia Di Donato1, Antimo Moretti2, Carmela Sorrentino1
1Dipartimento di Medicina di Precisione, Università della Campania 'L. Vanvitelli'- Via L. De Crecchio, 7-80138, Naples, Italy.
Abstract:
Aging induces a slow and progressive decrease in muscle mass and function, causing sarcopenia. Androgens control muscle trophism and exert important anabolic functions through the binding to the androgen receptor. Therefore, analysis of the androgen receptor-mediated actions in skeletal muscle might provide new hints for a better understanding of sarcopenia pathogenesis. In this study, we report that expression of the androgen receptor in skeletal muscle biopsies from 20 subjects is higher in young, as compared with old subjects. Co-immunoprecipitation experiments reveal that the androgen receptor is complexed with filamin A mainly in young, that in old subjects. Therefore, we have in depth analyzed the role of such complex using C2C12 myoblasts that express a significant amount of the androgen receptor. In these cells, hormone stimulation rapidly triggers the assembly of the androgen receptor/filamin A complex. Such complex prevents the senescence induced by oxidative stress in C2C12 cells, as disruption of the androgen receptor/filamin A complex by Rh-2025u stapled peptide re-establishes the senescent phenotype in C2C12 cells. Simultaneously, androgen stimulation of C2C12 cells rapidly triggers the activation of various signaling effectors, including Rac1, focal adhesion kinase, and mitogen-activated kinases. Androgen receptor blockade by bicalutamide or perturbation of androgen receptor/filamin A complex by Rh-2025u stapled peptide both reverse the hormone activation of signaling effectors. These findings further reinforce the role of the androgen receptor and its extranuclear partners in the rapid hormone signaling that controls the functions of C2C12 cells. Further investigations are needed to promote clinical interventions that might ameliorate muscle cell function as well the clinical outcome of age-related frailty.
Insights
Aging reduces muscle mass and function, leading to sarcopenia. This study shows the androgen receptor (AR) and filamin A complex in muscle prevents aging-related cell senescence and maintains function.
Area of Science:
- Muscle physiology and aging
- Molecular biology of androgen signaling
- Cellular senescence mechanisms
Background:
- Aging causes sarcopenia, a decline in muscle mass and function.
- Androgens and the androgen receptor (AR) are crucial for muscle health.
- Understanding AR's role in sarcopenia is vital for potential interventions.
Purpose of the Study:
- To investigate the role of the androgen receptor (AR) in age-related muscle decline (sarcopenia).
- To explore the interaction between AR and filamin A in skeletal muscle.
- To elucidate the protective mechanism of the AR/filamin A complex against cellular senescence.
Main Methods:
- Analysis of androgen receptor expression in human skeletal muscle biopsies from young and old subjects.
- Co-immunoprecipitation to detect AR/filamin A complex formation.
- Experiments using C2C12 myoblasts to study AR/filamin A complex assembly and function.
- Induction of cellular senescence via oxidative stress and assessment of AR/filamin A complex disruption.
Main Results:
- Androgen receptor expression was higher in young compared to old subjects.
- The androgen receptor (AR) forms a complex with filamin A, predominantly in young muscle.
- This AR/filamin A complex protects C2C12 myoblasts from oxidative stress-induced senescence.
- Disruption of the AR/filamin A complex re-establishes senescence.
- Androgen stimulation activates signaling pathways (Rac1, FAK, MAPK) dependent on the AR/filamin A complex.
Conclusions:
- The androgen receptor (AR) and its interaction with filamin A play a critical role in preventing muscle cell senescence.
- The AR/filamin A complex is essential for rapid androgen signaling pathways that maintain muscle function.
- These findings offer insights into potential therapeutic strategies for age-related muscle frailty.
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