Effects of hamstring flexibility and trunk flexion posture on creep deformation of viscoelastic lumbar tissues: An exploratory study.

IF 2.4 3区 医学 Q3 BIOPHYSICS
Journal of biomechanics Pub Date : 2025-10-01 Epub Date: 2025-08-06 DOI:10.1016/j.jbiomech.2025.112895
Sang Hyeon Kang
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引用次数: 0

Abstract

This study explores theeffects of hamstring flexibility on the creep deformation of viscoelastic lumbar tissues and its interaction with trunk flexion angles and exposure-recovery schedules. Sixteen participants, divided into two groups (low-flexible, high-flexible) based on hamstring flexibility, performed four 30-minute protocols with alternating intervals of trunk flexion (exposure) and upright standing (recovery). The protocols included combinations of two trunk flexion postures (maximal, submaximal) and two exposure-recovery schedules (3:6 min schedule, 1:2 min schedule) tested on four separate days. Before and after the protocol, trunk flexion-extension motions were employed to capture the changes in lumbar flexion angles of flexion-relaxation (EMG-off) in lumbar paraspinals, denoting lumbar spinal creep. The results revealed no significant main effect of individual hamstring flexibility but showed a significant interaction between flexibility and trunk flexion posture on the EMG-off lumbar flexion angles. The low-flexible group exhibited significantly greater EMG-off angles in the maximal posture (Δ2.4 on average) compared to the submaximal posture (Δ0.7), while the high-flexible group showed no effect. The analysis of lumbopelvic posture during sustained trunk flexion postures supported that altered pelvic angles as a function of individual hamstring flexibility may affect passive tissue loading at, or near, maximal flexion postures. These results suggest that reduced hamstring flexibility can play a significant role in spinal tissue creep with different trunk flexion postures. This work is a secondary analysis of a dataset previously published by Kang and Mirka (2025a), designed to address a distinct research question related to hamstring flexibility.

腿筋柔韧性和躯干弯曲姿势对腰椎粘弹性组织蠕变影响的探索性研究。
本研究探讨了腘绳肌柔韧性对腰椎粘弹性组织蠕变的影响及其与躯干屈曲角度和暴露-恢复时间表的相互作用。16名参与者,根据腿筋的柔韧性分为两组(低柔韧性组和高柔韧性组),执行4个30分钟的方案,交替进行躯干弯曲(暴露)和直立站立(恢复)。方案包括两种躯干弯曲姿势(最大,次最大)和两种暴露-恢复计划(3:6分钟计划,1:2分钟计划)的组合,分别在4天进行测试。方案前后,采用躯干屈伸运动来捕捉腰椎旁棘屈伸角(EMG-off)的变化,表示腰椎蠕变。结果显示,单个腘绳肌的柔韧性没有显著的主要影响,但柔韧性和躯干屈曲姿势对腰屈角的肌电图显示出显著的相互作用。低柔韧性组在最大体位(Δ2.4)的肌电角明显大于次最大体位(Δ0.7),而高柔韧性组则无明显影响。持续躯干屈曲姿势时腰骨盆姿势的分析支持骨盆角度的改变作为个体腿筋柔韧性的函数可能影响最大屈曲姿势时或接近时的被动组织负荷。这些结果表明,腘绳肌柔韧性降低可能在不同躯干屈曲姿势的脊柱组织蠕变中起重要作用。这项工作是对Kang和Mirka (2025a)先前发表的数据集的二次分析,旨在解决与腿筋灵活性相关的一个独特研究问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of biomechanics
Journal of biomechanics 生物-工程:生物医学
CiteScore
5.10
自引率
4.20%
发文量
345
审稿时长
1 months
期刊介绍: The Journal of Biomechanics publishes reports of original and substantial findings using the principles of mechanics to explore biological problems. Analytical, as well as experimental papers may be submitted, and the journal accepts original articles, surveys and perspective articles (usually by Editorial invitation only), book reviews and letters to the Editor. The criteria for acceptance of manuscripts include excellence, novelty, significance, clarity, conciseness and interest to the readership. Papers published in the journal may cover a wide range of topics in biomechanics, including, but not limited to: -Fundamental Topics - Biomechanics of the musculoskeletal, cardiovascular, and respiratory systems, mechanics of hard and soft tissues, biofluid mechanics, mechanics of prostheses and implant-tissue interfaces, mechanics of cells. -Cardiovascular and Respiratory Biomechanics - Mechanics of blood-flow, air-flow, mechanics of the soft tissues, flow-tissue or flow-prosthesis interactions. -Cell Biomechanics - Biomechanic analyses of cells, membranes and sub-cellular structures; the relationship of the mechanical environment to cell and tissue response. -Dental Biomechanics - Design and analysis of dental tissues and prostheses, mechanics of chewing. -Functional Tissue Engineering - The role of biomechanical factors in engineered tissue replacements and regenerative medicine. -Injury Biomechanics - Mechanics of impact and trauma, dynamics of man-machine interaction. -Molecular Biomechanics - Mechanical analyses of biomolecules. -Orthopedic Biomechanics - Mechanics of fracture and fracture fixation, mechanics of implants and implant fixation, mechanics of bones and joints, wear of natural and artificial joints. -Rehabilitation Biomechanics - Analyses of gait, mechanics of prosthetics and orthotics. -Sports Biomechanics - Mechanical analyses of sports performance.
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