A Neurogenic Perspective of Sarcopenia: Time Course Study of Sciatic Nerves From Aging Mice

V. Krishnan, Zoe White, C. Mcmahon, S. Hodgetts, Melinda Fitzgerald, T. Shavlakadze, A. Harvey, M. Grounds
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引用次数: 27

Abstract

To elucidate the neural basis for age-related sarcopenia, we quantified morphologic and molecular changes within sciatic nerves of aging male and female C57BL/6J mice aged between 3 and 27 months using immunoblotting, immunohistochemistry, and electron microscopy. Protein analyses by immunoblotting of nerves of male mice aged 4, 15, 18, 22, and 24 months showed increased levels of heavy chain SMI-32-positive neurofilaments, vimentin, tau5, choline acetyltransferase (ChAT), and p62 by 18–22 months. Similar protein increases were seen in 26-month-old compared with 3-month-old female mice. Immunostaining of longitudinal sections of old (27-month-old) male sciatic nerves revealed intense staining for tau5 and p62 that was increased compared with that at 3 months, but there were decreased numbers of axon profiles stained for ChAT or isolectin B4 (motor and sensory axons, respectively). Ultrastructural analysis revealed electron-dense aggregates within axons in peripheral nerves of old male mice; the proportion of axons that contained aggregates more than doubled between 15 and 27 months. Overall, the observed age-related accumulation of many proteins from about 18 months of age onward suggests impaired mechanisms for axonal transport and protein turnover. These peripheral nerve changes may contribute to the morphological and functional muscle deficits associated with sarcopenia.
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肌肉减少症的神经源性研究:衰老小鼠坐骨神经的时间过程研究
为了阐明年龄相关性肌肉减少症的神经基础,我们使用免疫印迹、免疫组织化学和电子显微镜对3 ~ 27月龄的雄性和雌性C57BL/6J小鼠坐骨神经的形态学和分子变化进行了量化。4、15、18、22和24月龄雄性小鼠的神经免疫印迹蛋白分析显示,18 - 22月龄时,重链smi -32阳性神经丝、vimentin、tau5、胆碱乙酰转移酶(ChAT)和p62水平升高。与3个月大的雌性小鼠相比,26个月大的雌性小鼠也出现了类似的蛋白质增加。老龄(27月龄)雄性坐骨神经纵切片免疫染色显示,与3月龄相比,tau5和p62的染色较强,但ChAT或隔离素B4(分别为运动轴突和感觉轴突)的轴突染色数量减少。超微结构分析显示老龄雄性小鼠周围神经轴突内有电子密集聚集;在15到27个月间,含有聚集体的轴突的比例增加了一倍以上。总的来说,从大约18个月大开始,观察到许多蛋白质的年龄相关积累表明轴突运输和蛋白质周转机制受损。这些周围神经的改变可能导致与肌肉减少症相关的形态学和功能性肌肉缺陷。
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