水平和垂直单腿跳跃之间的生物力学差异:每一个都能揭示什么功能障碍?

IF 2 3区 医学 Q3 ENGINEERING, BIOMEDICAL
Henrique Lelis Clemente de Oliveira, Pedro Vieira Sarmet Moreira, Luciano Luporini Menegaldo
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引用次数: 0

摘要

跳跃是用来评估肌肉骨骼健康的。本研究调查了单腿跳跃在推进和着陆阶段的最大高度和距离方面的神经力学差异,以确定关节和肌肉特异性缺陷。19名健康女性进行了两种类型的跳跃,评估包括3D运动学、地面反作用力和肌电图(EMG)。使用OpenSim计算关节运动学和扭矩,并使用由变异性(VAF)指标指导的非负矩阵分解从肌电数据中得出肌肉协同效应。统计参数映射比较了跳跃类型之间的质心位移、角轨迹、关节力矩和神经命令。最大高度跳跃需要更大的髋关节力量,并强调膝关节力学和骨盆在额骨面错位。在着陆过程中,跳高对偏心膝关节伸展和骨盆伸展有更高的要求,而跳远则需要增加腰椎伸展扭矩。在跳远中,膝关节屈曲力矩的减小和膝关节、躯干和髋关节屈曲角度的增加可以保护膝关节。跳高着陆促进骨盆前侧矢状面倾斜。分析表明,两种肌肉协同作用重建推进肌电信号,而着陆需要三种,这表明复杂性增加。这些发现强调了针对下肢功能的特定神经肌肉和生物力学方面进行定制评估的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomechanical differences between horizontal and vertical single-leg jumps: what could each one reveal about functional impairments?

Jumps are used to assess musculoskeletal health. This study investigates neuromechanical differences in single-leg jumps for maximum height and distance regarding propulsion and landing phases to identify joint- and muscle-specific deficits. Nineteen healthy women performed both jump types, with assessments including 3D kinematics, ground reaction forces, and electromyography (EMG). Joint kinematics and torques were calculated using OpenSim, and muscle synergies derived from EMG data using Non-Negative Matrix Factorization guided by Variability Accounted For (VAF) metrics. Statistical parametric mapping compared the centre of mass displacement, angular trajectories, joint moments, and neural commands between jump types. Maximal height jumps require greater hip joint effort and emphasise knee mechanics and pelvic misalignments in the frontal plane. During landing, height jumps impose higher demands on eccentric knee extension and pelvis list, whereas distance jumps necessitate increased lumbar extension torques. The reduced knee extension torque and increased knee, trunk, and hip flexion angles in distance jumps may protect the knee. Landing from height jumps promotes anterior pelvic tilt in the sagittal plane. The analysis shows that two muscle synergies reconstruct propulsion EMGs, while landing requires three, indicating increased complexity. These findings highlight the need for customised assessments targeting specific neuromuscular and biomechanical aspects of lower-limb function.

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来源期刊
Sports Biomechanics
Sports Biomechanics 医学-工程:生物医学
CiteScore
5.70
自引率
9.10%
发文量
135
审稿时长
>12 weeks
期刊介绍: Sports Biomechanics is the Thomson Reuters listed scientific journal of the International Society of Biomechanics in Sports (ISBS). The journal sets out to generate knowledge to improve human performance and reduce the incidence of injury, and to communicate this knowledge to scientists, coaches, clinicians, teachers, and participants. The target performance realms include not only the conventional areas of sports and exercise, but also fundamental motor skills and other highly specialized human movements such as dance (both sport and artistic). Sports Biomechanics is unique in its emphasis on a broad biomechanical spectrum of human performance including, but not limited to, technique, skill acquisition, training, strength and conditioning, exercise, coaching, teaching, equipment, modeling and simulation, measurement, and injury prevention and rehabilitation. As well as maintaining scientific rigour, there is a strong editorial emphasis on ''reader friendliness''. By emphasising the practical implications and applications of research, the journal seeks to benefit practitioners directly. Sports Biomechanics publishes papers in four sections: Original Research, Reviews, Teaching, and Methods and Theoretical Perspectives.
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