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本文引用的文献

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Skeletal muscle mitochondria in the elderly: effects of physical fitness and exercise training.老年人骨骼肌线粒体:身体适应性和运动训练的影响。
J Clin Endocrinol Metab. 2014 May;99(5):1852-61. doi: 10.1210/jc.2013-3983. Epub 2014 Jan 17.
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Age-related slowing of myosin actin cross-bridge kinetics is sex specific and predicts decrements in whole skeletal muscle performance in humans.肌球蛋白-肌动蛋白交联动力学的年龄相关性减慢具有性别特异性,并可预测人类整体骨骼肌性能的下降。
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Detection of an aging-related increase in advanced glycation end products in fast- and slow-twitch skeletal muscles in the rat.检测到大鼠快肌和慢肌中与衰老相关的晚期糖基化终产物增加。
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A morphometric study on human muscle mitochondria in aging.衰老过程中人类肌肉线粒体的形态计量学研究。
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Expression of mitochondrial fission and fusion regulatory proteins in skeletal muscle during chronic use and disuse.慢性使用和停用过程中骨骼肌中线粒体分裂和融合调节蛋白的表达。
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Molecular mechanisms underlying skeletal muscle weakness in human cancer: reduced myosin-actin cross-bridge formation and kinetics.人类癌症导致骨骼肌无力的分子机制:肌球蛋白-肌动蛋白交联形成和动力学降低。
J Appl Physiol (1985). 2013 Apr;114(7):858-68. doi: 10.1152/japplphysiol.01474.2012. Epub 2013 Feb 14.
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A PGC-1α isoform induced by resistance training regulates skeletal muscle hypertrophy.抗阻训练诱导的 PGC-1α 异构体调节骨骼肌肥大。
Cell. 2012 Dec 7;151(6):1319-31. doi: 10.1016/j.cell.2012.10.050.
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Mitochondrial pathways in sarcopenia of aging and disuse muscle atrophy.衰老和废用性肌肉萎缩导致的骨骼肌减少症中的线粒体途径。
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Mitochondrial morphology, topology, and membrane interactions in skeletal muscle: a quantitative three-dimensional electron microscopy study.骨骼肌中线粒体的形态、拓扑和膜相互作用:一项定量三维电子显微镜研究。
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10
The impact of aging on mitochondrial function and biogenesis pathways in skeletal muscle of sedentary high- and low-functioning elderly individuals.衰老对久坐的高功能和低功能老年个体骨骼肌中线粒体功能和生物发生途径的影响。
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人类骨骼肌纤维和线粒体中与年龄相关的结构改变具有性别特异性:与单纤维功能的关系。

Age-related structural alterations in human skeletal muscle fibers and mitochondria are sex specific: relationship to single-fiber function.

作者信息

Callahan Damien M, Bedrin Nicholas G, Subramanian Meenakumari, Berking James, Ades Philip A, Toth Michael J, Miller Mark S

机构信息

Department of Medicine, University of Vermont, Burlington, Vermont; and.

Department of Molecular Physiology and Biophysics, University of Vermont, Burlington, Vermont.

出版信息

J Appl Physiol (1985). 2014 Jun 15;116(12):1582-92. doi: 10.1152/japplphysiol.01362.2013. Epub 2014 May 1.

DOI:10.1152/japplphysiol.01362.2013
PMID:24790014
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4064376/
Abstract

Age-related loss of skeletal muscle mass and function is implicated in the development of disease and physical disability. However, little is known about how age affects skeletal muscle structure at the cellular and ultrastructural levels or how such alterations impact function. Thus we examined skeletal muscle structure at the tissue, cellular, and myofibrillar levels in young (21-35 yr) and older (65-75 yr) male and female volunteers, matched for habitual physical activity level. Older adults had smaller whole muscle tissue cross-sectional areas (CSAs) and mass. At the cellular level, older adults had reduced CSAs in myosin heavy chain II (MHC II) fibers, with no differences in MHC I fibers. In MHC II fibers, older men tended to have fewer fibers with large CSAs, while older women showed reduced fiber size across the CSA range. Older adults showed a decrease in intermyofibrillar mitochondrial size; however, the age effect was driven primarily by women (i.e., age by sex interaction effect). Mitochondrial size was inversely and directly related to isometric tension and myosin-actin cross-bridge kinetics, respectively. Notably, there were no intermyofibrillar or subsarcolemmal mitochondrial fractional content or myofilament ultrastructural differences in the activity-matched young and older adults. Collectively, our results indicate age-related reductions in whole muscle size do not vary by sex. However, age-related structural alterations at the cellular and subcellular levels are different between the sexes and may contribute to different functional phenotypes in ways that modulate sex-specific reductions in physical capacity with age.

摘要

骨骼肌质量和功能的年龄相关性丧失与疾病的发展和身体残疾有关。然而,关于年龄如何在细胞和超微结构水平上影响骨骼肌结构,或者这种改变如何影响功能,我们知之甚少。因此,我们在年轻(21 - 35岁)和年长(65 - 75岁)的男性和女性志愿者中,对肌肉组织、细胞和肌原纤维水平的骨骼肌结构进行了检查,这些志愿者的日常身体活动水平相匹配。老年人的全肌肉组织横截面积(CSA)和质量较小。在细胞水平上,老年人的肌球蛋白重链II(MHC II)纤维的CSA减小,而MHC I纤维没有差异。在MHC II纤维中,老年男性中CSA大的纤维往往较少,而老年女性在整个CSA范围内的纤维尺寸都减小。老年人肌原纤维间线粒体大小减小;然而,年龄效应主要由女性驱动(即年龄与性别交互效应)。线粒体大小分别与等长张力和肌球蛋白 - 肌动蛋白横桥动力学呈负相关和正相关。值得注意的是,在活动匹配的年轻人和老年人中,肌原纤维间或肌膜下线粒体的分数含量或肌丝超微结构没有差异。总体而言,我们的结果表明,与年龄相关的全肌肉大小减少不存在性别差异。然而,细胞和亚细胞水平上与年龄相关的结构改变在性别之间是不同的,并且可能以调节随着年龄增长身体能力的性别特异性降低的方式导致不同的功能表型。