Role of Hip Internal Rotation Range and Foot Progression Angle for Preventing Jones Fracture During Crossover Cutting.

IF 1.1 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Yudai Kikuchi, Tomoya Takabayashi, Takanori Kikumoto, Takahiro Watanabe, Syunsuke Suzuki, Shiori Hiratsuka, Masayoshi Kubo
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Abstract

Jones fracture is a common injury in soccer players, caused by overload on the fifth metatarsal (M5) that can occur during crossover cutting. This study aimed to investigate the effects of the hip internal rotation (HIR) range in passive and dynamic conditions and foot progression angle (FPA) on the forces applied to the M5 during crossover cutting. The study included 20 men with experience playing soccer. The passive HIR was measured in the prone position. A 3-dimensional motion analysis system, force plates, and Footscan were used to measure the angle of the lower limb, including dynamic HIR, FPA, and plantar pressure to the M5, during crossover cutting in the 45° direction. Pearson correlation coefficient was measured to examine the relationship between variables. Passive and dynamic HIR were not related to the plantar pressure on the M5 (P > .05). However, increased FPA in movement direction correlated with a reduction in plantar pressure on the M5 (r = -.56, P < .01). Minimizing the FPA with respect to the new direction during crossover cutting reduced plantar pressure on the M5 and thus could prevent Jones fracture.

髋关节内旋范围和脚的前进角度对防止交叉切割时琼斯骨折的作用。
琼斯骨折是足球运动员中常见的一种损伤,其原因是第五跖骨(M5)在交叉切入过程中承受过重的负荷。本研究旨在调查被动和动态条件下的髋关节内旋(HIR)幅度以及足前倾角度(FPA)对交叉切入时施加在第五跖骨上的力的影响。研究对象包括 20 名具有足球运动经验的男性。被动 HIR 在俯卧位进行测量。使用三维运动分析系统、测力板和 Footscan 测量下肢角度,包括动态 HIR、FPA 和 M5 在 45° 方向交叉切入时的足底压力。测量了皮尔逊相关系数,以研究变量之间的关系。被动和动态 HIR 与 M5 的足底压力无关(P > .05)。然而,运动方向上 FPA 的增加与 M5 足底压力的降低相关(r = -.56,P <.01)。在交叉切削过程中,相对于新方向的 FPA 最小化可降低 M5 的足底压力,从而防止琼斯骨折。
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 Applied Biomechanics
Journal of Applied Biomechanics 医学-工程:生物医学
CiteScore
2.00
自引率
0.00%
发文量
47
审稿时长
6-12 weeks
期刊介绍: The mission of the Journal of Applied Biomechanics (JAB) is to disseminate the highest quality peer-reviewed studies that utilize biomechanical strategies to advance the study of human movement. Areas of interest include clinical biomechanics, gait and posture mechanics, musculoskeletal and neuromuscular biomechanics, sport mechanics, and biomechanical modeling. Studies of sport performance that explicitly generalize to broader activities, contribute substantially to fundamental understanding of human motion, or are in a sport that enjoys wide participation, are welcome. Also within the scope of JAB are studies using biomechanical strategies to investigate the structure, control, function, and state (health and disease) of animals.
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