Melatonin and Exercise Restore Myogenesis and Mitochondrial Dynamics Deficits Associated With Sarcopenia in iMS‐Bmal1−/− Mice

Author:

Ramírez‐Casas Yolanda12ORCID,Fernández‐Martínez José12ORCID,Martín‐Estebané María123ORCID,Aranda‐Martínez Paula12ORCID,López‐Rodríguez Alba123ORCID,Esquivel‐Ruiz Sergio124ORCID,Yang Yang5ORCID,Escames Germaine123ORCID,Acuña‐Castroviejo Darío1236ORCID

Affiliation:

1. Centro de Investigación Biomédica, Facultad de Medicina, Departamento de Fisiología, Instituto de Biotecnología, Parque Tecnológico de Ciencias de la Salud Universidad de Granada Granada Spain

2. Instituto de Investigación Biosanitaria (Ibs. Granada) Hospital Universitario San Cecilio Granada Spain

3. Centro de Investigación Biomédica en Red de Fragilidad y Envejecimiento Saludable (CIBERFES), Instituto de Salud Carlos III (ISCIII) Madrid Spain

4. Departamento de Farmacología, Facultad de Ciencias de la Salud de Melilla Universidad de Granada Granada España

5. Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education, Faculty of Life Sciences and Medicine Northwest University Xi'an China

6. UGC de Laboratorios Clínicos Hospital Universitario San Cecilio Granada Spain

Abstract

ABSTRACTSarcopenia, a condition associated with aging, involves progressive loss of muscle mass, strength, and function, leading to impaired mobility, health, and increased mortality. The underlying mechanisms remain unclear, which limits the development of effective therapeutic interventions. Emerging evidence implicates chronodisruption as a key contributor to sarcopenia, emphasizing the role of Bmal1, a circadian clock gene critical for muscle integrity and mitochondrial function. In a skeletal muscle‐specific and inducible Bmal1 knockout model (iMS‐Bmal1−/−), we observed hallmark features of sarcopenia, including disrupted rhythms, impaired muscle function, and mitochondrial dysfunction. Exercise and melatonin treatment reversed these deficits independently of Bmal1. Building on these findings, the present study elucidates several mechanisms underlying these changes and the pathways by which melatonin and exercise exert their beneficial effects. Our findings indicate that iMS‐Bmal1−/− mice exhibit reduced expression of satellite cell and muscle regulatory factors, indicating impaired muscle regeneration. While mitochondrial respiration remained unchanged, notable alterations in mitochondrial dynamics disrupted mitochondria in skeletal muscle. In addition, these mice showed alterations in muscle energy metabolism, compromised antioxidant defense, and inflammatory response. Remarkably, exercise and/or melatonin successfully mitigated these deficits, restoring muscle health in Bmal1‐deficient mice. These findings position exercise and melatonin as promising therapeutic candidates for combating sarcopenia and emphasize the need to elucidate the molecular pathways underlying their protective effects.

Publisher

Wiley

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