Department of Exercise Sciences, Brigham Young University, 120F RB, Provo, UT, 84602, USA.
Department of Rehabilitation Sciences, University of Hartford, West Hartford, CT, 06117, USA.
Ann Biomed Eng. 2024 Jun;52(6):1719-1731. doi: 10.1007/s10439-024-03484-2. Epub 2024 Mar 17.
The role of the many small foot articulations and plantar tissues in gait is not well understood. While kinematic multi-segment foot models have increased our knowledge of foot segmental motions, the integration of kinetics with these models could further advance our understanding of foot mechanics and energetics. However, capturing and effectively utilizing segmental ground reaction forces remains challenging. The purposes of this study were to (1) develop methodology to integrate plantar pressures and shear stresses with a multi-segment foot model, and (2) generate and concisely display key normative data from this combined system. Twenty-six young healthy adults walked barefoot (1.3 m/s) across a pressure/shear sensor with markers matching a published 4-segment foot model. A novel anatomical/geometric template-based masking method was developed that successfully separated regions aligned with model segmentation. Directional shear force plots were created to summarize complex plantar shear distributions, showing opposing shear forces both between and within segments. Segment centers of pressure (CoPs) were shown to be primarily stationary within each segment, suggesting that forward progression in healthy gait arises primarily from redistributing weight across relatively fixed contact points as opposed to CoP movement within a segment. Inverse dynamics-based normative foot joint moments and power were presented in the context of these CoPs to aid in interpretation of tissue stresses. Overall, this work represents a successful integration of motion capture with direct plantar pressure and shear measurements for multi-segment foot kinetics. The presented tools are versatile enough to be used with other models and contexts, while the presented normative database may be useful as a baseline comparison for clinical work in gait energetics and efficiency, balance, and motor control. We hope that this work will aid in the advancement and availability of kinetic MSF modeling, increase our knowledge of foot mechanics, and eventually lead to improved clinical diagnosis, rehabilitation, and treatment.
足部小关节和足底组织在步态中的作用尚未得到很好的理解。尽管运动学多节段足部模型增加了我们对足部节段运动的了解,但将动力学与这些模型结合起来可以进一步提高我们对足部力学和能量学的理解。然而,捕捉和有效利用分段地面反作用力仍然具有挑战性。本研究的目的是:(1) 开发一种将足底压力和剪切力与多节段足部模型集成的方法;(2) 从这个组合系统中生成和简明显示关键的规范数据。26 名年轻健康的成年人赤脚以 1.3 m/s 的速度在压力/剪切传感器上行走,传感器上的标记与已发表的 4 节段足部模型相匹配。开发了一种新颖的基于解剖/几何模板的掩蔽方法,成功地将与模型分割对齐的区域分开。创建了方向剪切力图来总结复杂的足底剪切分布,显示出节段之间和节段内的相反剪切力。节段中心压力 (CoP) 主要在每个节段内保持静止,这表明健康步态的前进主要是通过在相对固定的接触点上重新分配重量来实现的,而不是在节段内的 CoP 运动。基于逆动力学的规范足部关节力矩和功率在这些 CoP 的背景下呈现,以帮助解释组织应力。总的来说,这项工作成功地将运动捕捉与足底压力和剪切直接测量相结合,用于多节段足部动力学。所提出的工具具有足够的通用性,可以与其他模型和上下文一起使用,而所提出的规范数据库可以作为临床步态能量学和效率、平衡和运动控制研究的基线比较。我们希望这项工作将有助于推进和提供动力学多节段足部模型,增加我们对足部力学的了解,并最终导致临床诊断、康复和治疗的改进。