老化对骨骼肌蛋白质合成的钝化刺激是对机械负荷的反应,是核糖体生物发生受损的结果吗?

IF 3.3 Q2 GERIATRICS & GERONTOLOGY
Thomas Chaillou, Diego Montiel-Rojas
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引用次数: 1

摘要

与年龄相关的骨骼肌质量损失导致力量下降。这可能是由于肌肉蛋白质合成(MPS)在响应合成代谢刺激(如机械负荷)时刺激不足所致。核糖体的生物发生是翻译能力的主要决定因素,对肌肉质量的控制至关重要。这篇综述旨在提出核糖体生物发生因机械负荷的老化而受损的假设,这可能导致与年龄相关的合成代谢抵抗和进行性肌肉萎缩。最近的动物研究表明,衰老会阻碍肌肉对机械负荷的肥厚反应。这与RNA聚合酶I (Pol I)对核糖体DNA (rDNA)的转录受损、总RNA浓度的有限增加、AKT/mTOR通路的激活减弱以及AMPK磷酸化增加有关。相反,年龄介导的核糖体生物发生损伤不太可能是对电刺激的反应。在人类中,抗阻运动训练的肥厚反应随着年龄的增长而减弱。这伴随着长期MPS的缺陷和总RNA浓度增加的缺失。研究结果表明,老年人肌肉中Pol i介导的rDNA转录受损,核糖体生物发生的几个上游调节因子的激活/表达减弱。总之,新出现的证据表明,核糖体生物发生受损可以部分解释与年龄相关的合成代谢抵抗机械负荷,这可能最终导致进行性肌肉萎缩。未来的研究应开发更先进的分子工具来深入分析肌肉核糖体的生物发生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Does the blunted stimulation of skeletal muscle protein synthesis by aging in response to mechanical load result from impaired ribosome biogenesis?

Does the blunted stimulation of skeletal muscle protein synthesis by aging in response to mechanical load result from impaired ribosome biogenesis?

Age-related loss of skeletal muscle mass leads to a reduction of strength. It is likely due to an inadequate stimulation of muscle protein synthesis (MPS) in response to anabolic stimuli, such as mechanical load. Ribosome biogenesis is a major determinant of translational capacity and is essential for the control of muscle mass. This mini-review aims to put forth the hypothesis that ribosome biogenesis is impaired by aging in response to mechanical load, which could contribute to the age-related anabolic resistance and progressive muscle atrophy. Recent animal studies indicate that aging impedes muscle hypertrophic response to mechanical overload. This is associated with an impaired transcription of ribosomal DNA (rDNA) by RNA polymerase I (Pol I), a limited increase in total RNA concentration, a blunted activation of AKT/mTOR pathway, and an increased phosphorylation of AMPK. In contrast, an age-mediated impairment of ribosome biogenesis is unlikely in response to electrical stimulations. In human, the hypertrophic response to resistance exercise training is diminished with age. This is accompanied by a deficit in long-term MPS and an absence of increased total RNA concentration. The results addressing the acute response to resistance exercise suggest an impaired Pol I-mediated rDNA transcription and attenuated activation/expression of several upstream regulators of ribosome biogenesis in muscles from aged individuals. Altogether, emerging evidence indicates that impaired ribosome biogenesis could partly explain age-related anabolic resistance to mechanical load, which may ultimately contribute to progressive muscle atrophy. Future research should develop more advanced molecular tools to provide in-depth analysis of muscle ribosome biogenesis.

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