A Battery-Powered Ankle Exoskeleton Improves Gait Mechanics in a Feasibility Study of Individuals with Cerebral Palsy

被引:53
|
作者
Lerner, Zachary F. [1 ,2 ]
Harvey, Taryn A. [1 ]
Lawson, Jennifer L. [1 ]
机构
[1] No Arizona Univ, Dept Mech Engn, 15600 S McConnell Dr,NAU EGR Bldg 69, Flagstaff, AZ 86011 USA
[2] Univ Arizona, Coll Med, Dept Orthoped, Phoenix, AZ 85003 USA
关键词
Wearable robotics; Rehabilitation; Walking; Cerebral palsy; AMBULATORY CHILDREN; ENERGY-EXPENDITURE; WALKING; PROGRESSION; PREVALENCE; ENERGETICS; TRENDS; COST;
D O I
10.1007/s10439-019-02237-w
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Neuromuscular impairment associated with cerebral palsy (CP) often leads to life-long walking deficits. Our goal was to evaluate the ability of a novel untethered wearable ankle exoskeleton to reduce the severity of gait pathology from CP. In this clinical feasibility study of five individuals with CP, we used instrumented gait analysis to quantify how powered plantar-flexor assistance affected gait mechanics following multi-visit acclimation. Compared to how each participant walked normally, walking with untethered exoskeleton assistance resulted in improved ankle plantar-flexion and knee extension; residual flexion deformity across the lower-extremity improved by a clinically significant 14.4 degrees (p=0.022). Powered plantar-flexor assistance increased average total positive ankle power by 44% (p=0.037), and resulted in a 30% reduction in average negative biological ankle power (p=0.004) and a 29% reduction in average positive hip power (p=0.009). These findings suggest that powered ankle assistance augmented, rather than simply replaced, biological function to produce a more efficient gait pattern, which was corroborated by a 19% improvement in metabolic cost of transport (p=0.011). This study provides evidence in support of the continued investigation of ankle assistance in mobility and rehabilitation interventions for this patient population.
引用
收藏
页码:1345 / 1356
页数:12
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