Human Performance Laboratory, Faculty of Kinesiology, University of Calgary, Calgary, Canada.
Department of Biomechanics in Sports, Faculty of Sport and Health Sciences, Technische Universitaet Muenchen, Munich, Germany.
Sci Rep. 2018 Jan 24;8(1):1534. doi: 10.1038/s41598-018-19657-8.
The steady-state isometric force following active muscle shortening or lengthening is smaller (force depression; FD) or greater (residual force enhancement; RFE) than a purely isometric contraction at the corresponding length. The mechanisms behind these phenomena remain not fully understood, with few studies investigating the effects of FD and RFE in stretch-shortening cycles (SSC). The purpose of this study was to investigate the influence of RFE and peak force at the end of the stretch phase on the steady-state isometric force following shortening. Isometric thumb adduction force measurements were preceded by an isometric, a shortening contraction to induce FD, and SSCs at different stretch speeds (15°/s, 60°/s, and 120°/s). The different peak force values at the end of stretch and the different amounts of work performed during shortening did not influence the steady-state isometric force at the end of the SSC. We conclude that the FD following SSC depends exclusively on the amount of RFE established in the initial stretch phase in situations where the timing and contractile conditions of the shortening phase are kept constant .
在主动肌肉缩短或拉长后,稳态等长力量比相应长度下的纯等长收缩小(力量抑制;FD)或大(剩余力增强;RFE)。这些现象背后的机制仍不完全清楚,很少有研究调查 FD 和 RFE 在伸展-缩短循环(SSC)中的影响。本研究旨在探讨 RFE 和伸展阶段末端的峰值力对缩短后稳态等长力的影响。在进行等长拇指内收力测量之前,先进行等长收缩和缩短收缩,以产生 FD,并以不同的伸展速度(15°/s、60°/s 和 120°/s)进行 SSC。伸展末端的不同峰值力值和缩短过程中完成的不同工作量并不影响 SSC 末端的稳态等长力。我们的结论是,在保持缩短阶段的时间和收缩条件不变的情况下,SSC 后的 FD 仅取决于初始伸展阶段中建立的 RFE 量。