首页> 美国卫生研究院文献>Aging (Albany NY) >Oxidative muscles have better mitochondrial homeostasis than glycolytic muscles throughout life and maintain mitochondrial function during aging
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Oxidative muscles have better mitochondrial homeostasis than glycolytic muscles throughout life and maintain mitochondrial function during aging

机译:在整个生命中氧化性肌肉比糖酵解性肌肉具有更好的线粒体稳态并在衰老过程中保持线粒体功能

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摘要

Preservation of mitochondrial function, which is dependent on mitochondrial homeostasis (biogenesis, dynamics, disposal/recycling), is critical for maintenance of skeletal muscle function. Skeletal muscle performance declines upon aging (sarcopenia) and is accompanied by decreased mitochondrial function in fast-glycolytic muscles. Oxidative metabolism promotes mitochondrial homeostasis, so we investigated whether mitochondrial function is preserved in oxidative muscles. We compared tibialis anterior (predominantly glycolytic) and soleus (oxidative) muscles from young (3 mo) and old (28-29 mo) C57BL/6J mice. Throughout life, the soleus remained more oxidative than the tibialis anterior and expressed higher levels of markers of mitochondrial biogenesis, fission/fusion and autophagy. The respiratory capacity of mitochondria isolated from the tibialis anterior, but not the soleus, declined upon aging. The soleus and tibialis anterior exhibited similar aging-associated changes in mitochondrial biogenesis, fission/fusion, disposal and autophagy marker expression, but opposite changes in fiber composition: the most oxidative fibers declined in the tibialis anterior, while the more glycolytic fibers declined in the soleus. In conclusion, oxidative muscles are protected from mitochondrial aging, probably due to better mitochondrial homeostasis ab initio and aging-associated changes in fiber composition. Exercise training aimed at enriching oxidative fibers may be valuable in preventing mitochondria-related aging and its contribution to sarcopenia.
机译:线粒体功能的维持取决于线粒体的动态平衡(生物发生,动力学,处置/再循环),对维持骨骼肌功能至关重要。骨骼肌的性能会随着衰老(肌肉减少症)而下降,并伴有快速糖酵解性肌肉中线粒体功能的下降。氧化代谢促进线粒体体内稳态,因此我们研究了氧化肌肉中是否保留了线粒体功能。我们比较了年轻(3 mo)和老(28-29 mo)C57BL / 6J小鼠的胫前肌(主要为糖酵解)和比目鱼肌(氧化)。在整个生命过程中,比目鱼肌比胫骨前肌更具氧化性,并表达更高水平的线粒体生物发生,裂变/融合和自噬标志物。从胫骨前部而不是比目鱼肌分离出的线粒体的呼吸能力随着年龄的增长而下降。比目鱼肌和胫骨前肌在线粒体的生物发生,裂变/融合,处置和自噬标记物表达方面表现出相似的衰老相关变化,但纤维成分的变化却相反:氧化性最强的纤维在胫骨前肌下降,而糖酵解纤维下降更多。比目鱼。总之,保护氧化性肌肉免受线粒体衰老的影响,这可能是由于线粒体从头开始具有更好的稳态以及与纤维组成相关的衰老相关的变化。旨在丰富氧化纤维的运动训练可能对预防线粒体相关的衰老及其对少肌症的贡献很有价值。

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