Kent Jane A, Ørtenblad Niels, Hogan Michael C, Poole David C, Musch Timothy I
1Department of Kinesiology, University of Massachusetts, Amherst MA; 2Institute of Sports Science and Clinical Biomechanics, University of Southern Denmark, Odense, DENMARK; 3Department of Health Sciences, Mid Sweden University, Östersund, SWEDEN; 4Department of Medicine, University of California, San Diego, CA; and 5Department of Kinesiology, Kansas State University, Manhattan, KS.
Med Sci Sports Exerc. 2016 Nov;48(11):2281-2293. doi: 10.1249/MSS.0000000000001052.
Muscle fatigue has been studied with a variety approaches, tools and technologies. The foci of these studies have ranged tremendously, from molecules to the entire organism. Single cell and animal models have been used to gain mechanistic insight into the fatigue process. The theme of this review is the concept that the mechanisms of muscle fatigue do not occur in isolation in vivo: muscular work is supported by many complex physiological systems, any of which could fail during exercise and thus contribute to fatigue. To advance our overall understanding of fatigue, a combination of models and approaches is necessary. In this review, we examine the roles that neuromuscular properties, intracellular glycogen, oxygen metabolism, and blood flow play in the fatigue process during exercise and pathological conditions.
人们已经采用多种方法、工具和技术对肌肉疲劳进行了研究。这些研究的重点范围极为广泛,从分子层面到整个生物体。单细胞和动物模型已被用于深入了解疲劳过程的机制。本综述的主题是,在体内,肌肉疲劳的机制并非孤立发生:肌肉活动得到许多复杂生理系统的支持,其中任何一个系统在运动过程中都可能出现故障,从而导致疲劳。为了增进我们对疲劳的全面理解,需要结合多种模型和方法。在本综述中,我们探讨了神经肌肉特性、细胞内糖原、氧代谢和血流在运动及病理状态下的疲劳过程中所起的作用。