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Updated: Jul 10, 2026

Muscle Imbalances: Testing and Training Functional Eccentric Hamstring Strength in Athletic Populations
Published on: May 1, 2018
Similar adaptation in shear moduli of the biarticular hamstring muscles after eccentric-only training and static
Raki Kawama1,2,3, Yuki Okuda4, Katsuki Takahashi2
1Faculty of Health and Sports Science, Doshisha University, Kyoto, Japan.
Abstract:
Measures related to passive mechanical properties (e.g., shear modulus) of human skeletal muscle have traditionally been believed to chronically decrease with repeated static stretching (SS). Instead, repeated eccentric contraction has recently emerged as a promising alternative for chronically decreasing muscle shear modulus. Here, we tested the hypothesis that repeated eccentric-only training (ECC) induces greater adaptations in muscle shear modulus than SS within a matched intervention period. Eleven healthy young males participated in a 10-wk intervention (3 sessions/wk) involving knee flexor ECC (3 sets of 10 repetitions performed at 50% of maximal eccentric torque) for one leg and knee-extended SS (3 sets of stretching held for the same duration as training) for the other. Before and after the intervention, we assessed maximal joint range of motion (ROM), shear moduli (using ultrasound shear wave elastography), architectures (using diffusion tensor imaging) and volumes of the biarticular hamstring muscles, and the maximal voluntary isometric torque of knee flexors. The local shear moduli of the biceps femoris long head and semimembranosus significantly decreased, whereas the local shear modulus of the semitendinosus remained unchanged, regardless of intervention type. Maximal joint ROM significantly increased similarly across intervention types. Additionally, greater increases in maximal voluntary torque and volumes of all biarticular hamstring muscles were observed after ECC than after SS. Our findings suggest that ECC has a similar potential to SS in inducing chronic decrease in local shear moduli of specific biarticular hamstring muscles, while simultaneously promoting gains in muscle strength, muscle size, and joint flexibility.NEW & NOTEWORTHY Traditionally, repeated static stretching (SS) has been considered the representative approach for achieving a chronic decrease in muscle shear modulus. However, we demonstrated that eccentric-only training (ECC, involving tensile and contractile force) induced decreases in the local passive shear moduli of specific biarticular hamstring muscles similar to those achieved with SS. Our findings offer a novel alternative to SS for chronically decreasing passive muscle shear modulus and advance our understanding of the adaptive plasticity of muscle mechanical properties.
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