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Gait Training with a Wearable Curara® Robot for Cerebellar Ataxia: a Single-arm Study

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Publisher Biomed Central
Date 2021 Sep 9
PMID 34496863
Citations 5
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Abstract

Background: Ataxic gait is one of the most common and disabling symptoms in people with degenerative cerebellar ataxia. Intensive and well-coordinated inpatient rehabilitation improves ataxic gait. In addition to therapist-assisted gait training, robot-assisted gait training has been used for several neurological disorders; however, only a small number of trials have been conducted for degenerative cerebellar ataxia. We aimed to validate the rehabilitative effects of a wearable "curara®" robot developed in a single-arm study of people with degenerative cerebellar ataxia.

Methods: Twenty participants with spinocerebellar ataxia or multiple system atrophy with predominant cerebellar ataxia were enrolled. The clinical trial duration was 15 days. We used a curara® type 4 wearable robot for gait training. We measured the following items at days 0, 7, and 14: Scale for the Assessment and Rating of Ataxia, 10-m walking time (10 mWT), 6-min walking distance (6 mWD), and timed up and go test. Gait parameters (i.e., stride duration and length, standard deviation of stride duration and length, cadence, ratio of the stance and swing phases, minimum and maximum knee joint angles, and minimum and maximum hip joint angles) were obtained using a RehaGait®. On days 1-6 and 8-13, the participants were instructed to conduct gait training for 30 ± 5 min with curara®. We calculated the improvement rate as the difference of values between days 14 and 0 divided by the value on day 0. Differences in the gait parameters were analyzed using a generalized linear mixed model with Bonferroni's correction.

Results: Data from 18 participants were analyzed. The mean improvement rate of the 10 mWT and 6 mWD was 19.0% and 29.0%, respectively. All gait parameters, except the standard deviation of stride duration and length, improved on day 14.

Conclusions: Two-week RAGT with curara® has rehabilitative effects on gait function comparable to those of therapist-assisted training. Although the long-term effects after a month of RAGT with curara® are unclear, curara® is an effective tool for gait training of people with degenerative ataxia. Trial registration jRCT, jRCTs032180164. Registered: 27 February 2019; retrospectively registered. https://jrct.niph.go.jp/en-latest-detail/jRCTs032180164 .

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References
1.
Ilg W, Synofzik M, Brotz D, Burkard S, Giese M, Schols L . Intensive coordinative training improves motor performance in degenerative cerebellar disease. Neurology. 2009; 73(22):1823-30. DOI: 10.1212/WNL.0b013e3181c33adf. View

2.
Ammann-Reiffer C, Bastiaenen C, Meyer-Heim A, van Hedel H . Effectiveness of robot-assisted gait training in children with cerebral palsy: a bicenter, pragmatic, randomized, cross-over trial (PeLoGAIT). BMC Pediatr. 2017; 17(1):64. PMC: 5333417. DOI: 10.1186/s12887-017-0815-y. View

3.
Ilg W, Bastian A, Boesch S, Burciu R, Celnik P, Claassen J . Consensus paper: management of degenerative cerebellar disorders. Cerebellum. 2013; 13(2):248-68. PMC: 4344126. DOI: 10.1007/s12311-013-0531-6. View

4.
Milne S, Corben L, Georgiou-Karistianis N, Delatycki M, Yiu E . Rehabilitation for Individuals With Genetic Degenerative Ataxia: A Systematic Review. Neurorehabil Neural Repair. 2017; 31(7):609-622. DOI: 10.1177/1545968317712469. View

5.
Kim H, Shin J, Yang S, Shin M, Lee S . Robot-assisted gait training for balance and lower extremity function in patients with infratentorial stroke: a single-blinded randomized controlled trial. J Neuroeng Rehabil. 2019; 16(1):99. PMC: 6664752. DOI: 10.1186/s12984-019-0553-5. View