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次最大收缩时骨骼肌长度与主动力的关系:综述

The Relationship Between Length and Active Force for Submaximal Skeletal Muscle Contractions: a Review.

作者信息

Zimmermann Haiko Bruno, Macintosh Brian R, Pupo Juliano Dal

机构信息

Biomechanics Laboratory, Center of Sports, Federal University of Santa Catarina, Florianópolis, Brazil.

Human Performance Laboratory, Faculty of Kinesiology, University of Calgary, Calgary, AB, Canada.

出版信息

Sports Med. 2025 Jan;55(1):37-47. doi: 10.1007/s40279-024-02140-y. Epub 2024 Nov 15.

Abstract

The force-length relationship is usually obtained for isometric contractions with maximal activation, but less is known about how sarcomere length affects force during submaximal activation. During submaximal activation, length-dependent alterations in calcium sensitivity, owing to changes in cross-bridge kinetics (rate of attachment and/or detachment), result in an activation-dependent shift in optimal length to longer sarcomere lengths. It is known that sarcomere length, as well as temperature and phosphorylation of the regulatory light chains of myosin, can modify Ca⁺ sensitivity by altering the probability of cross-bridge interaction. This altered calcium sensitivity is particularly important for submaximal force levels, as it can change the shape of the length dependence of force, with peak force occurring at sarcomere lengths longer than those associated with maximal filament overlap. In athletic contexts, contractions typically do not reach maximal intensity. Therefore, understanding that the ability to produce force under both maximal and submaximal conditions can differ, and that peak force can be generated at different lengths, could influence the development of targeted training regimens optimal for each sport.

摘要

力-长度关系通常是在最大激活状态下的等长收缩中获得的,但对于在次最大激活状态下肌节长度如何影响力,人们了解得较少。在次最大激活状态下,由于横桥动力学(附着和/或脱离速率)的变化,钙敏感性会发生长度依赖性改变,导致最佳长度向更长的肌节长度发生激活依赖性偏移。已知肌节长度以及温度和肌球蛋白调节轻链的磷酸化可以通过改变横桥相互作用的概率来改变Ca⁺敏感性。这种改变的钙敏感性对于次最大力水平尤为重要,因为它可以改变力的长度依赖性形状,峰值力出现在比与最大细丝重叠相关的肌节长度更长的情况下。在运动环境中,收缩通常不会达到最大强度。因此,认识到在最大和次最大条件下产生力的能力可能不同,并且峰值力可以在不同长度下产生,这可能会影响针对每项运动的最佳目标训练方案的制定。

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