下肢肌肉结构与下肢力量、功率及肌肉-肌腱复合体刚度之间的关系

Relationships Between Lower-Body Muscle Structure and Lower-Body Strength, Power, and Muscle-Tendon Complex Stiffness.

作者信息

Secomb Josh L, Lundgren Lina E, Farley Oliver R L, Tran Tai T, Nimphius Sophia, Sheppard Jeremy M

机构信息

1Strength and Conditioning and Sport Science Department, Hurley Surfing Australia High Performance Center, Casuarina Beach, Western Australia, Australia; and 2Center for Exercise and Sport Science Research, Edith Cowan University, Joondalup, Perth, Australia.

出版信息

J Strength Cond Res. 2015 Aug;29(8):2221-8. doi: 10.1519/JSC.0000000000000858.

Abstract

The purpose of this study was to determine whether any relationships were present between lower-body muscle structure and strength and power qualities. Fifteen elite male surfing athletes performed a battery of lower-body strength and power tests, including countermovement jump (CMJ), squat jump (SJ), isometric midthigh pull (IMTP), and had their lower-body muscle structure assessed with ultrasonography. In addition, lower-body muscle-tendon complex (MTC) stiffness and dynamic strength deficit (DSD) ratio were calculated from the CMJ and IMTP. Significant relationships of large to very large strength were observed between the vastus lateralis (VL) thickness of the left (LVL) and right (RVL) leg and peak force (PF) (r = 0.54-0.77, p < 0.01-0.04), peak velocity (PV) (r = 0.66-0.83, p < 0.01), and peak jump height (r = 0.62-0.80, p < 0.01) in the CMJ and SJ, as well as IMTP PF (r = 0.53-0.60, p = 0.02-0.04). Furthermore, large relationships were found between left lateral gastrocnemius (LG) pennation angle and SJ and IMTP PF (r = 0.53, p = 0.04, and r = 0.70, p < 0.01, respectively) and between LG and IMTP relative PF (r = 0.63, p = 0.01). Additionally, large relationships were identified between lower-body MTC stiffness and DSD ratio (r = 0.68, p < 0.01), right (LG) pennation angle (r = 0.51, p = 0.05), CMJ PF (r = 0.60, p = 0.02), and jump height (r = 0.53, p = 0.04). These results indicate that greater VL thickness and increased LG pennation angle are related to improved performance in the CMJ, SJ, and IMTP. Furthermore, these results suggest that lower-body MTC stiffness explains a large amount of variance in determining an athlete's ability to rapidly apply force during a dynamic movement.

摘要

本研究的目的是确定下半身肌肉结构与力量及功率素质之间是否存在任何关联。15名精英男性冲浪运动员进行了一系列下半身力量和功率测试,包括反向纵跳(CMJ)、深蹲跳(SJ)、等长大腿中部拉力(IMTP),并通过超声检查评估了他们的下半身肌肉结构。此外,根据CMJ和IMTP计算了下半身肌肉-肌腱复合体(MTC)的刚度和动态力量 deficit(DSD)比率。在CMJ和SJ以及IMTP中,观察到左(LVL)腿和右(RVL)腿的股外侧肌(VL)厚度与峰值力(PF)(r = 0.54 - 0.77,p < 0.01 - 0.04)、峰值速度(PV)(r = 0.66 - 0.83,p < 0.01)和峰值跳跃高度(r = 0.62 - 0.80,p < 0.01)之间存在大到非常大的强度关系,以及与IMTP PF(r = 0.53 - 0.60,p = 0.02 - 0.04)之间存在关系。此外,发现左侧腓肠肌(LG)的羽状角与SJ和IMTP PF之间存在较大关系(分别为r = 0.53,p = 0.04和r = 0.70,p < 0.01),以及LG与IMTP相对PF之间存在关系(r = 0.63,p = 0.01)。此外,在下半身MTC刚度与DSD比率(r = 0.68,p < 0.01)、右侧(LG)羽状角(r = 0.51,p = 0.05)、CMJ PF(r = 0.60,p = 0.02)和跳跃高度(r = 0.53,p = 0.04)之间发现了较大关系。这些结果表明,更大的VL厚度和增加的LG羽状角与CMJ、SJ和IMTP中的性能改善有关。此外,这些结果表明,下半身MTC刚度在确定运动员在动态运动中快速施加力的能力方面解释了大量的方差。

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