Zhang Xueying, Ren Weiyan, Jan Yih-Kuen, Wang Xingyue, Yao Jie, Pu Fang
Key Laboratory of Human Motion Analysis and Rehabilitation Technology of the Ministry of Civil Affairs, School of Biological Science and Medical Engineering, Beihang University, Beijing, China.
School of Engineering Medicine, Beihang University, Beijing, China.
Med Biol Eng Comput. 2025 Apr 14. doi: 10.1007/s11517-025-03349-3.
Infrapatellar straps are commonly recommended for treating and preventing running-related knee injuries, and their effects have been investigated at the level of individual muscles. However, the use of straps may influence the neuromuscular control strategies of the knee, and the nervous system controls numerous muscles modularly through muscle synergy. This study aimed to investigate the effects of infrapatellar straps on muscle synergies during running. Kinematic, kinetic, and electromyography data from seventeen participants were recorded during running at self-selected speeds, both with and without infrapatellar straps. Muscle synergies were extracted from electromyography data using non-negative matrix factorization, including the number of modules, dynamic motor control index (DMC), muscle activation combinations, and temporal activation coefficients. Knee flexion angles and extension moments were estimated using OpenSim. Although wearing infrapatellar straps did not affect the number of modules or DMC, knee extensor weightings in the modules associated with the stance phase were reduced with the straps. Additionally, peak temporal activation in the propulsion phase was delayed when wearing the straps. Knee extension moments during the stance phase decreased significantly. While infrapatellar straps did not affect muscle synergy modularity, they altered activation patterns and weightings, suggesting that straps may help reduce quadriceps muscle forces.
髌下束带通常被推荐用于治疗和预防与跑步相关的膝盖损伤,并且已经在个体肌肉层面研究了它们的效果。然而,束带的使用可能会影响膝盖的神经肌肉控制策略,并且神经系统通过肌肉协同作用模块化地控制众多肌肉。本研究旨在调查髌下束带在跑步过程中对肌肉协同作用的影响。在十七名参与者以自选速度跑步时,记录了他们佩戴和不佩戴髌下束带时的运动学、动力学和肌电图数据。使用非负矩阵分解从肌电图数据中提取肌肉协同作用,包括模块数量、动态运动控制指数(DMC)、肌肉激活组合和时间激活系数。使用OpenSim估计膝关节屈曲角度和伸展力矩。尽管佩戴髌下束带不影响模块数量或DMC,但与站立阶段相关的模块中膝关节伸肌的权重在佩戴束带时降低。此外,佩戴束带时推进阶段的峰值时间激活延迟。站立阶段的膝关节伸展力矩显著降低。虽然髌下束带不影响肌肉协同作用的模块化,但它们改变了激活模式和权重,表明束带可能有助于降低股四头肌力量。