Suppr超能文献

在绵羊模型中确定不同步态倾斜度下的垂直地面反作用力和膝关节力学。

Determine the vertical ground reaction forces and knee mechanics with different gait inclinations in the sheep model.

作者信息

Spatholt Rebecca J, Minoughan Chelsea E, Gooch Cynthia, Harms Samuel P, Taylor Michal L, Galloway Marc T, Shearn Jason T

机构信息

Department of Biomedical Engineering, University of Cincinnati, Cincinnati, Ohio, USA.

Orthopaedic Associates of Duluth, Duluth, Minnesota, USA.

出版信息

J Orthop Res. 2023 Apr;41(4):779-786. doi: 10.1002/jor.25416. Epub 2022 Aug 2.

Abstract

Our current understanding of knee mechanics and anterior cruciate ligament (ACL) function is predominately based on data recorded during simulations of clinical examinations or the application of nonphysiologic loads and motions. These methodologies provide little information on knee and ACL mechanics during activities of daily living (ADLs). Additionally, researchers have not directly measured knee kinetics, knee contact pressures, and ACL forces, and it is unknown how these parameters change with different activities. This study quantified the effects of activity level on vertical ground reaction forces, knee kinematics, and joint and ligament forces during in vivo motions. Five female Suffolk sheep were walked twice weekly on a treadmill during level (0°), inclined (+6°), and declined (-6°) gait for 12 weeks. Electromagnetic (EM) trackers were surgically implanted onto the left distal femur and the left proximal tibia, and in vivo motions were recorded for all activities. Following sacrifice, the in vivo motions were applied to their respective knees using a serial robot with a multi-axis load cell. In vitro simulations were repeated to measure (a) total knee forces, (b) contact pressure maps, and (c) ACL-only forces. Declining the gait surface led to increased posterior translation during the swing phase and decreased flexion at hoof-strike, decreased medial contact pressure at push-off, decreased ACL force at hoof-strike and increased ACL force at push-off. This study established a system that can be used to examine knee mechanics and ACL forces during ADLs for different knee states to define design requirements for ACL reconstruction techniques.

摘要

我们目前对膝关节力学和前交叉韧带(ACL)功能的理解主要基于在临床检查模拟或非生理负荷与运动应用过程中记录的数据。这些方法几乎没有提供关于日常生活活动(ADL)期间膝关节和ACL力学的信息。此外,研究人员尚未直接测量膝关节动力学、膝关节接触压力和ACL力,并且这些参数如何随不同活动而变化尚不清楚。本研究量化了活动水平对体内运动期间垂直地面反作用力、膝关节运动学以及关节和韧带力的影响。五只雌性萨福克羊每周在跑步机上行走两次,分别进行水平(0°)、上坡(+6°)和下坡(-6°)步态行走,持续12周。将电磁(EM)跟踪器通过手术植入左股骨远端和左胫骨近端,并记录所有活动的体内运动。处死后,使用带有多轴测力传感器的串联机器人将体内运动应用于各自的膝关节。重复体外模拟以测量(a)总膝关节力,(b)接触压力图,以及(c)仅ACL力。降低步态表面坡度会导致摆动期向后平移增加、蹄触地时屈曲减少、蹬离时内侧接触压力降低、蹄触地时ACL力降低以及蹬离时ACL力增加。本研究建立了一个系统,可用于检查不同膝关节状态下ADL期间的膝关节力学和ACL力,以确定ACL重建技术的设计要求。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验