褪黑素和运动可恢复iMS-Bmal1 - / -小鼠肌肉减少症相关的肌肉发生和线粒体动力学缺陷

IF 8.3 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Yolanda Ramírez-Casas, José Fernández-Martínez, María Martín-Estebané, Paula Aranda-Martínez, Alba López-Rodríguez, Sergio Esquivel-Ruiz, Yang Yang, Germaine Escames, Darío Acuña-Castroviejo
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引用次数: 0

摘要

肌肉减少症是一种与衰老相关的疾病,涉及肌肉质量、力量和功能的逐渐丧失,导致活动能力受损、健康受损和死亡率增加。潜在的机制尚不清楚,这限制了有效治疗干预措施的发展。新出现的证据表明,时间紊乱是肌肉减少症的一个关键因素,强调了Bmal1的作用,Bmal1是一个对肌肉完整性和线粒体功能至关重要的生物钟基因。在骨骼肌特异性和可诱导的Bmal1敲除模型(iMS-Bmal1 - / -)中,我们观察到肌肉减少症的标志性特征,包括节律紊乱、肌肉功能受损和线粒体功能障碍。运动和褪黑素治疗独立地逆转了Bmal1的这些缺陷。在这些发现的基础上,本研究阐明了这些变化背后的几种机制,以及褪黑激素和运动发挥其有益作用的途径。我们的研究结果表明,iMS-Bmal1−/−小鼠表现出卫星细胞和肌肉调节因子的表达减少,表明肌肉再生受损。虽然线粒体呼吸作用保持不变,但线粒体动力学的显著改变破坏了骨骼肌中的线粒体。此外,这些小鼠表现出肌肉能量代谢的改变,抗氧化防御和炎症反应的受损。值得注意的是,运动和/或褪黑素成功地减轻了这些缺陷,恢复了bmal1缺陷小鼠的肌肉健康。这些发现表明运动和褪黑素是对抗肌肉减少症的有希望的治疗候选者,并强调有必要阐明其保护作用背后的分子途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Melatonin and Exercise Restore Myogenesis and Mitochondrial Dynamics Deficits Associated With Sarcopenia in iMS-Bmal1−/− Mice

Sarcopenia, 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.

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来源期刊
Journal of Pineal Research
Journal of Pineal Research 医学-内分泌学与代谢
CiteScore
17.70
自引率
4.90%
发文量
66
审稿时长
1 months
期刊介绍: The Journal of Pineal Research welcomes original scientific research on the pineal gland and melatonin in vertebrates, as well as the biological functions of melatonin in non-vertebrates, plants, and microorganisms. Criteria for publication include scientific importance, novelty, timeliness, and clarity of presentation. The journal considers experimental data that challenge current thinking and welcomes case reports contributing to understanding the pineal gland and melatonin research. Its aim is to serve researchers in all disciplines related to the pineal gland and melatonin.
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