Effects of body weight support and walking speed on device-derived hip angles and muscle activity symmetry during overground robotic-assisted walking in older adults

Understanding how body weight support (BWS) and walking speed influence gait in older adults may help guide the selection of assistance settings during robotic-assisted gait rehabilitation. These parameters are routinely adjusted during clinical practice, yet their effects during overground robotic-assisted walking remain insufficiently characterized. This study investigated how different levels of BWS and walking speed were associated with device-derived hip angles and bilateral muscle activity symmetry in older adults. Thirteen older adults (85.4 ± 6.8 years) completed overground walking trials using a robotic-assisted BWS system under nine experimental conditions combining three BWS levels (0%, 25%, and 50%) and three walking speeds (0.058, 0.225, and 0.400 m/s). Device-derived peak hip flexion and extension angles and bilateral muscle activity symmetry of the medial gastrocnemius and tibialis anterior were analyzed. Separate two-way repeated-measures ANOVA models were used to evaluate the effects of walking speed and BWS on each outcome. Increasing BWS reduced device-derived peak hip flexion and the magnitude of peak hip extension. Compared with 0% BWS, 50% BWS reduced peak hip flexion by 4.87° (95% CI, 2.87 to 6.86; p < 0.001) and reduced hip extension by 1.91° (95% CI, 1.30 to 2.51; p < 0.001). Walking speed also significantly affected peak hip extension ( p = 0.036), with greater peak hip extension at high than at low speed (mean difference, 0.72°; 95% CI, 0.25 to 1.19; Holm-adjusted p = 0.019). Medial gastrocnemius symmetry was significantly affected by walking speed ( p = 0.022), with lower symmetry at high than at low and medium speeds. Tibialis anterior symmetry showed a significant walking speed × BWS interaction ( p = 0.049), although no pairwise comparison remained significant after Holm adjustment. BWS and walking speed were associated with changes in device-derived hip angles and bilateral muscle activity symmetry during overground robotic-assisted walking in older adults. The observed responses differed across outcomes and muscles. These exploratory findings may help inform future studies examining how assistance parameters influence gait during robotic-assisted rehabilitation. This investigation was retrospectively registered at ClinicalTrials.gov (NCT06025981; first posted September 6, 2023).

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Publication Details

Journal
BMC Geriatrics
Published
2026-09-12
DOI
https://doi.org/10.1186/s12877-026-08252-6
Primary Topic
Balance, Gait, and Falls Prevention
Type
article
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article

Effects of body weight support and walking speed on device-derived hip angles and muscle activity symmetry during overground robotic-assisted walking in older adults

Rafael Raya, Eloy Urendes, Vanina Costa, Luis Perea et al.
BMC Geriatrics
Balance, Gait, and Falls Prevention
article

Effects of body weight support and walking speed on device-derived hip angles and muscle activity symmetry during overground robotic-assisted walking in older adults

Rafael Raya, Eloy Urendes, Vanina Costa, Luis Perea, Ana Rojo, Daniel Anchuela, Cristina Sánchez
article en

Abstract

Understanding how body weight support (BWS) and walking speed influence gait in older adults may help guide the selection of assistance settings during robotic-assisted gait rehabilitation. These parameters are routinely adjusted during clinical practice, yet their effects during overground robotic-assisted walking remain insufficiently characterized. This study investigated how different levels of BWS and walking speed were associated with device-derived hip angles and bilateral muscle activity symmetry in older adults. Thirteen older adults (85.4 ± 6.8 years) completed overground walking trials using a robotic-assisted BWS system under nine experimental conditions combining three BWS levels (0%, 25%, and 50%) and three walking speeds (0.058, 0.225, and 0.400 m/s). Device-derived peak hip flexion and extension angles and bilateral muscle activity symmetry of the medial gastrocnemius and tibialis anterior were analyzed. Separate two-way repeated-measures ANOVA models were used to evaluate the effects of walking speed and BWS on each outcome. Increasing BWS reduced device-derived peak hip flexion and the magnitude of peak hip extension. Compared with 0% BWS, 50% BWS reduced peak hip flexion by 4.87° (95% CI, 2.87 to 6.86; p < 0.001) and reduced hip extension by 1.91° (95% CI, 1.30 to 2.51; p < 0.001). Walking speed also significantly affected peak hip extension ( p = 0.036), with greater peak hip extension at high than at low speed (mean difference, 0.72°; 95% CI, 0.25 to 1.19; Holm-adjusted p = 0.019). Medial gastrocnemius symmetry was significantly affected by walking speed ( p = 0.022), with lower symmetry at high than at low and medium speeds. Tibialis anterior symmetry showed a significant walking speed × BWS interaction ( p = 0.049), although no pairwise comparison remained significant after Holm adjustment. BWS and walking speed were associated with changes in device-derived hip angles and bilateral muscle activity symmetry during overground robotic-assisted walking in older adults. The observed responses differed across outcomes and muscles. These exploratory findings may help inform future studies examining how assistance parameters influence gait during robotic-assisted rehabilitation. This investigation was retrospectively registered at ClinicalTrials.gov (NCT06025981; first posted September 6, 2023).

BMC Geriatrics
Universidad San Pablo CEU (ES), Atos (Spain) (ES)
Openalex Percentile: Top 5%
Balance, Gait, and Falls Prevention
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