Suppr超能文献

寻找“最佳位置”:最大限度提高踝关节韧带损伤耐受性的足部旋转和并合接触。

Searching for the "sweet spot": the foot rotation and parallel engagement of ankle ligaments in maximizing injury tolerance.

机构信息

Center for Applied Biomechanics, University of Virginia, 4040 Lewis and Clark Drive, Charlottesville, VA, 22911, USA.

State Key Laboratory of Automotive Safety and Energy, Department of Automotive Engineering, Tsinghua University, Beijing, 100084, China.

出版信息

Biomech Model Mechanobiol. 2017 Dec;16(6):1937-1945. doi: 10.1007/s10237-017-0929-z. Epub 2017 Jun 20.

Abstract

Ligament sprains, defined as tearing of bands of fibrous tissues within ligaments, account for a majority of injuries to the foot and ankle complex in field-based sports. External rotation of the foot is considered the primary injury mechanism of syndesmotic ankle sprains with concomitant flexion and inversion/eversion associated with particular patterns of ligament trauma. However, the influence of the magnitude and direction of loading vectors to the ankle on the in situ stress state of the ligaments has not been quantified in the literature. The objective of the present study was to search for the maximum injury tolerance of a human foot with an acceptable subfailure distribution of individual ligaments. We used a previously developed and comprehensively validated foot and ankle model to reproduce a range of combined foot rotation experienced during high-risk sports activities. Biomechanical computational investigation was performed on initial foot rotation from [Formula: see text] of plantar flexion to [Formula: see text] of dorsiflexion, and from [Formula: see text] of inversion to [Formula: see text] of eversion prior to external rotation. Change in initial foot rotation shifted injury initiation among different ligaments and resulted in a wide range of injury tolerances at the structural level (e.g., 36-125 Nm of rotational moment). The observed trend was in agreement with a parallel experimental study that initial plantar flexion decreased the incidence of syndesmotic injury compared to a neutral foot. A mechanism of distributing even loads across ligaments subjected to combined foot rotations was identified. This mechanism is potential to obtain the maximum load-bearing capability of a foot and ankle while minimizing the injury severity of ligaments. Such improved understanding of ligament injuries in athletes is necessary to facilitate injury management by clinicians and countermeasure development by biomechanists.

摘要

韧带扭伤是指韧带内纤维组织带的撕裂,占足部和踝关节复合体在基于场地的运动中受伤的大多数。外旋足部被认为是联合踝关节扭伤的主要损伤机制,同时伴有屈曲和内翻/外翻,与特定的韧带损伤模式相关。然而,在文献中,尚未对作用于踝关节的加载矢量的大小和方向对韧带的原位应力状态进行量化。本研究的目的是寻找具有可接受的个体韧带亚失效分布的人类足部的最大损伤容限。我们使用先前开发并经过全面验证的足部和踝关节模型来复制在高风险运动活动中经历的各种组合足部旋转。在初始足部旋转的基础上进行了生物力学计算研究,范围从跖屈[Formula: see text]到背屈[Formula: see text],从内翻[Formula: see text]到外翻[Formula: see text],然后再进行外旋。初始足部旋转的变化改变了不同韧带的损伤起始位置,并导致结构水平上的损伤容限范围很广(例如,旋转力矩为 36-125 Nm)。观察到的趋势与平行的实验研究一致,即与中立足相比,初始跖屈降低了联合损伤的发生率。确定了一种在受组合足部旋转影响的韧带之间分配均匀载荷的机制。这种机制有可能在最大限度地提高足踝的承载能力的同时,最大限度地减少韧带的损伤严重程度。这种对运动员韧带损伤的深入理解对于临床医生进行损伤管理和生物力学学家进行对策开发是必要的。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验