A novel approach to assess coordination in people with transtibial amputations using continuous and event relative phase

IF 2.4 3区 医学 Q3 BIOPHYSICS Journal of biomechanics Pub Date : 2025-01-10 DOI:10.1016/j.jbiomech.2025.112522
Austin Louis Mituniewicz, Varun Nalam, He Helen Huang
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Abstract

Continuous relative phase (CRP) quantifies coordination for cyclic motions as the difference in the phase portrait locations between its constituent coordinates and has been widely used in populations with neuromuscular impairments. Continuous analyses, like statistical parameter mapping (SPM), provide greater resolution than traditional techniques that first compress CRP across a section of the cycle to a single point, like mean average relative phase (MARP). However, both analyses neglect the effect of intermediate event timing (e.g. toe-off), on coordination. Given this deficit and the notion that some people with transtibial amputations (PwTA) may not benefit from powered prostheses due to altered coordination, we computed lower extremity CRPs from 5 PwTA walking with their own passive prostheses and a powered device on a treadmill, as well as 5 matched able-bodied individuals (ABI). We then compared results from non-parametric SPMs to those from MARP using a 10-40-10-40 gait phase decomposition and extracted relative phase at the events that theoretically delineate the decomposition. We found continuous, discrete analyses matched well, particularly near ankle “push-off” (∼55 % gait cycle) with all methods identifying differences in shank-foot coordination between the ABI group and PwTA group walking with the powered device. Although it is unclear why the powered prosthesis promotes more in-phase shank-foot CRP, potential covariates include limb posture and device control. In tandem with altered event timing, these factors may not only influence coordination, but also illuminate why some PwTA do not reduce their energy expenditure when walking in powered ankle prostheses.
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一种利用连续期和事件相对期评估胫骨截肢患者协调性的新方法。
连续相对相位(CRP)将循环运动的协调性量化为其组成坐标之间的相位肖像位置的差异,已广泛应用于神经肌肉损伤人群。连续分析,如统计参数映射(SPM),提供了比传统技术更高的分辨率,传统技术首先将CRP压缩到周期的一个部分,如平均相对相位(MARP)。然而,这两种分析都忽略了中间事件时间(例如脚趾)对协调的影响。考虑到这一缺陷,以及一些经胫截肢(PwTA)患者由于协调性改变可能无法从动力假肢中获益的概念,我们计算了5名经胫截肢(PwTA)患者使用自己的被动假肢和动力装置在跑步机上行走的下肢crp,以及5名匹配的健全个体(ABI)。然后,我们使用10-40-10-40步态相位分解将非参数SPMs的结果与MARP的结果进行比较,并在理论上描述分解的事件中提取相对相位。我们发现连续的、离散的分析很好地匹配,特别是在脚踝“推离”附近(约55%的步态周期),所有方法都能识别ABI组和PwTA组在使用动力装置行走时小腿-足协调方面的差异。虽然目前尚不清楚为什么动力假体促进了更多的与腿-脚同步的CRP,但潜在的协变量包括肢体姿势和设备控制。随着活动时间的改变,这些因素可能不仅影响协调性,而且还解释了为什么一些PwTA在使用动力踝关节假体行走时没有减少他们的能量消耗。
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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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