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线粒体分裂蛋白 Drp1 调控衰老小鼠的肌肉和线粒体健康。

Regulation of muscle and mitochondrial health by the mitochondrial fission protein Drp1 in aged mice.

机构信息

Département des sciences biologiques, Faculté des Sciences, UQAM, Québec, Canada.

Département des sciences de l'activité physique, Faculté des Sciences, UQAM, Québec, Canada.

出版信息

J Physiol. 2021 Sep;599(17):4045-4063. doi: 10.1113/JP281752. Epub 2021 Aug 4.

Abstract

KEY POINTS

The maintenance of mitochondrial integrity is critical for skeletal muscle health. Mitochondrial dynamics play key roles in mitochondrial quality control; however, the exact role that mitochondrial fission plays in the muscle ageing process remains unclear. Here we report that both Drp1 knockdown and Drp1 overexpression late in life in mice is detrimental to skeletal muscle function and mitochondrial health. Drp1 knockdown in 18-month-old mice resulted in severe skeletal muscle atrophy, mitochondrial dysfunction, muscle degeneration/regeneration, oxidative stress and impaired autophagy. Overexpressing Drp1 in 18-month-old mice resulted in mild skeletal muscle atrophy and decreased mitochondrial quality. Our data indicate that silencing or overexpressing Drp1 late in life is detrimental to skeletal muscle integrity. We conclude that modulating Drp1 expression is unlikely to be a viable approach to counter the muscle ageing process.

ABSTRACT

Sarcopenia, the ageing-related loss of skeletal muscle mass and function, is a debilitating process negatively impacting the quality of life of afflicted individuals. Although the mechanisms underlying sarcopenia are still only partly understood, impairments in mitochondrial dynamics, and specifically mitochondrial fission, have been proposed as an underlying mechanism. Importantly, conflicting data exist in the field and both excessive and insufficient mitochondrial fission were proposed to contribute to sarcopenia. In Drosophila melanogaster, enhancing mitochondrial fission in midlife through overexpression of dynamin-1-like protein (Drp1) extended lifespan and attenuated several key hallmarks of muscle ageing. Whether a similar outcome of Drp1 overexpression is observed in mammalian muscles remains unknown. In this study, we investigated the impact of knocking down and overexpressing Drp1 protein for 4 months in skeletal muscles of late middle-aged (18 months) mice using intra-muscular injections of adeno-associated viruses expressing shRNA targeting Drp1 or full Drp1 cDNA. We report that knocking down Drp1 expression late in life triggers severe muscle atrophy, mitochondrial dysfunctions, degeneration/regeneration, oxidative stress and impaired autophagy. Drp1 overexpression late in life triggered mild muscle atrophy and decreased mitochondrial quality. Taken altogether, our results indicate that both overexpression and silencing of Drp1 in late middle-aged mice negatively impact skeletal muscle mass and mitochondrial health. These data suggest that Drp1 content must remain within a narrow physiological range to preserve muscle and mitochondrial integrity during ageing. Altering Drp1 expression is therefore unlikely to be a viable target to counter sarcopenia.

摘要

要点

线粒体完整性的维持对骨骼肌健康至关重要。线粒体动力学在维持线粒体质量控制中发挥关键作用;然而,线粒体裂变在肌肉衰老过程中的确切作用仍不清楚。在这里,我们报告说,在小鼠生命后期敲低 Drp1 或过表达 Drp1 对骨骼肌功能和线粒体健康都是有害的。在 18 个月大的小鼠中敲低 Drp1 会导致严重的骨骼肌萎缩、线粒体功能障碍、肌肉退化/再生、氧化应激和自噬受损。在 18 个月大的小鼠中过表达 Drp1 会导致轻度的骨骼肌萎缩和线粒体质量下降。我们的数据表明,在生命后期沉默或过表达 Drp1 对骨骼肌的完整性是有害的。我们得出的结论是,调节 Drp1 的表达不太可能成为对抗肌肉衰老过程的可行方法。

摘要

骨骼肌减少症是与衰老相关的骨骼肌质量和功能丧失,是一种使人衰弱的过程,对受影响个体的生活质量产生负面影响。尽管骨骼肌减少症的机制仍不完全清楚,但线粒体动力学的损伤,特别是线粒体裂变,被认为是一种潜在的机制。重要的是,该领域存在相互矛盾的数据,并且过度和不足的线粒体裂变都被认为与骨骼肌减少症有关。在黑腹果蝇中,通过过表达 dynamin-1 样蛋白(Drp1)来增强生命中期的线粒体裂变,从而延长了寿命,并减轻了肌肉衰老的几个关键标志。在哺乳动物肌肉中是否观察到 Drp1 过表达的类似结果仍不清楚。在这项研究中,我们通过肌肉内注射表达针对 Drp1 的短发夹 RNA 或全长 Drp1 cDNA 的腺相关病毒,在 18 个月大的老年(18 个月)小鼠的骨骼肌中研究了 4 个月内敲低和过表达 Drp1 蛋白的影响。我们报告说,在生命后期敲低 Drp1 表达会触发严重的肌肉萎缩、线粒体功能障碍、退化/再生、氧化应激和受损的自噬。在生命后期过表达 Drp1 会触发轻度的肌肉萎缩和线粒体质量下降。总而言之,我们的结果表明,在中年后期的小鼠中过表达和沉默 Drp1 都会对骨骼肌质量和线粒体健康产生负面影响。这些数据表明,在衰老过程中,Drp1 的含量必须保持在狭窄的生理范围内,以维持肌肉和线粒体的完整性。因此,改变 Drp1 的表达不太可能成为对抗骨骼肌减少症的可行目标。

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