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衰老和帕金森病对运动单位重塑的影响:抗阻运动训练的影响。

Effects of aging and Parkinson's disease on motor unit remodeling: influence of resistance exercise training.

机构信息

Department of Cell, Developmental, and Integrative Biology, University of Alabama at Birmingham , Birmingham, Alabama.

UAB Center for Exercise Medicine, University of Alabama at Birmingham , Birmingham, Alabama.

出版信息

J Appl Physiol (1985). 2018 Apr 1;124(4):888-898. doi: 10.1152/japplphysiol.00563.2017. Epub 2017 Dec 21.

Abstract

Aging muscle atrophy is in part a neurodegenerative process revealed by denervation/reinnervation events leading to motor unit remodeling (i.e., myofiber type grouping). However, this process and its physiological relevance are poorly understood, as is the wide-ranging heterogeneity among aging humans. Here, we attempted to address 1) the relation between myofiber type grouping and molecular regulators of neuromuscular junction (NMJ) stability; 2) the impact of motor unit remodeling on recruitment during submaximal contractions; 3) the prevalence and impact of motor unit remodeling in Parkinson's disease (PD), an age-related neurodegenerative disease; and 4) the influence of resistance exercise training (RT) on regulators of motor unit remodeling. We compared type I myofiber grouping, molecular regulators of NMJ stability, and the relative motor unit activation (MUA) requirement during a submaximal sit-to-stand task among untrained but otherwise healthy young (YA; 26 yr, n = 27) and older (OA; 66 yr, n = 91) adults and OA with PD (PD; 67 yr, n = 19). We tested the effects of RT on these outcomes in OA and PD. PD displayed more motor unit remodeling, alterations in NMJ stability regulation, and a higher relative MUA requirement than OA, suggesting PD-specific effects. The molecular and physiological outcomes tracked with the severity of type I myofiber grouping. Together these findings suggest that age-related motor unit remodeling, manifested by type I myofiber grouping, 1) reduces MUA efficiency to meet submaximal contraction demand, 2) is associated with disruptions in NMJ stability, 3) is further impacted by PD, and 4) may be improved by RT in severe cases. NEW & NOTEWORTHY Because the physiological consequences of varying amounts of myofiber type grouping are unknown, the current study aims to characterize the molecular and physiological correlates of motor unit remodeling. Furthermore, because exercise training has demonstrated neuromuscular benefits in aged humans and improved innervation status and neuromuscular junction integrity in animals, we provide an exploratory analysis of the effects of high-intensity resistance training on markers of neuromuscular degeneration in both Parkinson's disease (PD) and age-matched older adults.

摘要

肌肉衰老萎缩在一定程度上是神经退行性过程的表现,这种过程由去神经/再神经支配事件导致运动单位重塑(即肌纤维类型分组)。然而,这个过程及其生理相关性尚未被充分理解,就像衰老个体之间存在广泛的异质性一样。在这里,我们试图解决以下问题:1)肌纤维类型分组与神经肌肉接头(NMJ)稳定性的分子调节剂之间的关系;2)运动单位重塑对次最大收缩时募集的影响;3)帕金森病(PD)这种与年龄相关的神经退行性疾病中运动单位重塑的流行程度和影响;4)抗阻训练(RT)对运动单位重塑调节剂的影响。我们比较了未经训练但健康的年轻(YA;26 岁,n = 27)和老年(OA;66 岁,n = 91)成年人以及 OA 合并 PD(PD;67 岁,n = 19)之间的 I 型肌纤维分组、NMJ 稳定性调节的分子调节剂以及次最大坐-站任务中的相对运动单位激活(MUA)需求。我们测试了 RT 对 OA 和 PD 中这些结果的影响。与 OA 相比,PD 表现出更多的运动单位重塑、NMJ 稳定性调节的改变以及更高的相对 MUA 需求,这表明 PD 具有特异性影响。分子和生理结果与 I 型肌纤维分组的严重程度相关。综上所述,这些发现表明与年龄相关的运动单位重塑,表现为 I 型肌纤维分组,1)降低 MUA 效率以满足次最大收缩需求,2)与 NMJ 稳定性的破坏有关,3)进一步受到 PD 的影响,4)在严重情况下可能通过 RT 得到改善。新的和值得注意的是,由于不同数量的肌纤维类型分组的生理后果尚不清楚,因此目前的研究旨在描述运动单位重塑的分子和生理相关性。此外,由于运动训练已在老年人群中表现出神经肌肉益处,并改善了动物的神经支配状态和神经肌肉接头完整性,我们对高强度抗阻训练对 PD 和年龄匹配的老年个体的神经肌肉退行性标志物的影响进行了探索性分析。

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