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肌肉纤维类型对骑行中能量最优踏频的影响。

Muscle fiber type effects on energetically optimal cadences in cycling.

作者信息

Umberger Brian R, Gerritsen Karin G M, Martin Philip E

机构信息

Biodynamics Laboratory, 100 Seaton Center, University of Kentucky, Lexington, KY 40506, USA.

出版信息

J Biomech. 2006;39(8):1472-9. doi: 10.1016/j.jbiomech.2005.03.025. Epub 2005 May 31.

Abstract

Fast-twitch (FT) and slow-twitch (ST) muscle fibers vary in their mechanical and energetic properties, and it has been suggested that muscle fiber type distribution influences energy expenditure and the energetically optimal cadence during pedaling. However, it is challenging to experimentally isolate the effects of muscle fiber type on pedaling energetics. In the present study, a modeling and computer simulation approach was used to test the dependence of muscle energy expenditure on pedaling rate during submaximal cycling. Simulations were generated using a musculoskeletal model at cadences from 40 to 120 rev min(-1), and the dynamic and energetic properties of the model muscles were scaled to represent a range of muscle fiber types. Energy expenditure and the energetically optimal cadence were found to be higher in a model with more FT fibers than a model with more ST fibers, consistent with predictions from the experimental literature. At the muscle level, mechanical efficiency was lower in the model with a greater proportion of FT fibers, but peaked at a higher cadence than in the ST model. Regardless of fiber type distribution, mechanical efficiency was low at 40 rev min(-1), increased to a broad plateau between 60 and 100 rev min(-1) , and decreased substantially at 120 rev min(-1). In conclusion, muscle fiber type distribution was confirmed as an important determinant of the energetics of pedaling.

摘要

快肌(FT)和慢肌(ST)纤维在力学和能量特性方面存在差异,有人提出肌肉纤维类型分布会影响能量消耗以及蹬踏过程中的能量最优踏频。然而,通过实验分离肌肉纤维类型对蹬踏能量学的影响具有挑战性。在本研究中,采用建模和计算机模拟方法来测试次最大强度骑行过程中肌肉能量消耗对踏频的依赖性。使用肌肉骨骼模型在40至120转/分钟(-1)的踏频下进行模拟,并且对模型肌肉的动态和能量特性进行缩放以代表一系列肌肉纤维类型。结果发现,与含有更多ST纤维的模型相比,含有更多FT纤维的模型中的能量消耗和能量最优踏频更高,这与实验文献的预测一致。在肌肉水平上,FT纤维比例较高的模型中的机械效率较低,但在比ST模型更高的踏频下达到峰值。无论纤维类型分布如何,在40转/分钟(-1)时机械效率较低,在60至100转/分钟(-1)之间增加到一个较宽的平稳期,并在120转/分钟(-1)时大幅下降。总之,肌肉纤维类型分布被确认为蹬踏能量学的一个重要决定因素。

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