Lura Derek J, Wernke Matthew M, Carey Stephanie L, Kahle Jason T, Miro Rebecca M, Highsmith M Jason
Florida Gulf Coast University, Department of Bioengineering and Software Engineering, Fort Myers, FL, USA, 33965.
University of South Florida, Mechanical Engineering Department, Tampa, FL, USA, 33620.
Clin Biomech (Bristol). 2015 Feb;30(2):175-81. doi: 10.1016/j.clinbiomech.2014.12.003. Epub 2014 Dec 13.
Microprocessor knees have improved the gait and functional abilities of persons with transfemoral amputation. The Genium prosthetic knee offers an advanced sensor and control system designed to decrease impairment by: allowing greater stance phase flexion, easing transitions between gait phases, and compensating for changes in terrain. The aim of this study was to determine differences between the knee flexion angle of persons using the Genium knee, the C-Leg knee, and non-amputee controls; and to evaluate the impact the prostheses on gait and level of impairment of the user.
This study used a randomized experimental crossover of persons with transfemoral amputation using the Genium and C-Leg microprocessor knees (n=25), with an observational sample of non-amputee controls (n=5). Gait analysis by 3D motion tracking of subjects ambulating at different speeds on level ground and on 5° and 10° ramps was completed.
Use of the Genium resulted in a significant increase in peak knee flexion for swing (5°, p<0.01, d=0.34) and stance (2°, p<0.01, d=0.19) phases relative to C-Leg use. There was a high degree of variability between subjects, and significant differences still remain between the Genium group and the control group's knee flexion angles for most speeds and slopes.
The Genium knee generally increases flexion in swing and stance, potentially decreasing the level of impairment for persons with transfemoral amputation. This study demonstrates functional differences between the C-Leg and Genium knees to help prosthetists determine if the Genium will provide functional benefits to individual patients.
微处理器控制的膝关节改善了经股骨截肢者的步态和功能能力。Genium假肢膝关节提供了先进的传感器和控制系统,旨在通过以下方式减少功能障碍:允许更大的站立期屈曲、缓解步态阶段之间的过渡以及补偿地形变化。本研究的目的是确定使用Genium膝关节、C-Leg膝关节的人与非截肢对照组之间膝关节屈曲角度的差异;并评估假肢对使用者步态和功能障碍水平的影响。
本研究采用随机实验交叉设计,让经股骨截肢者(n = 25)使用Genium和C-Leg微处理器控制的膝关节,并以非截肢对照组(n = 5)作为观察样本。通过三维运动跟踪对受试者在平坦地面、5°和10°斜坡上以不同速度行走时进行步态分析。
与使用C-Leg膝关节相比,使用Genium膝关节导致摆动期(5°,p < 0.01,d = 0.34)和站立期(2°,p < 0.01,d = 0.19)的膝关节屈曲峰值显著增加。受试者之间存在高度变异性,并且在大多数速度和坡度下,Genium组与对照组的膝关节屈曲角度仍存在显著差异。
Genium膝关节通常会增加摆动期和站立期的屈曲,可能会降低经股骨截肢者的功能障碍水平。本研究证明了C-Leg膝关节和Genium膝关节之间的功能差异,有助于假肢矫形师确定Genium是否能为个体患者带来功能益处。