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大学・研究所にある論文を検索できる 「Occupational therapy using a robotic-assisted glove ameliorates finger dexterity and modulates functional connectivity in amyotrophic lateral sclerosis.」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

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Occupational therapy using a robotic-assisted glove ameliorates finger dexterity and modulates functional connectivity in amyotrophic lateral sclerosis.

YAMAKAWA Isamu YAMADA Atsushi 40534334 0000-0002-5493-5085 SONODA Yuma 00584179 WAKITA Kiyoshi NISHIOKA Takashi HARADA Yoshinori OGAWA Nobuhiro KITAMURA Akihiro 80636019 SANADA Mitsuru 10418759 TANI Tohru 20179823 IMAI Shinji 90283556 URUSHITANI Makoto 60332326 0000-0003-2773-9836 滋賀医科大学

2022.11.18

概要

Introduction:
Although rehabilitation is recommended for amyotrophic lateral sclerosis (ALS), improvement of functional decline has hardly been achieved. We investigated the effect of occupational therapy that uses a robotic-assisted glove (RAG) on hand dexterity and the functional connectivities found in the brain of ALS patients.
Method:
Ten patients diagnosed with ALS and admitted to the Shiga University of Medical Science (SUMS) Hospital from December 2018 to December 2021 participated in the study. These participants chose the hand side to wear RAG and exercised for two weeks. A sham movement was performed on the other side. We administered several functional assessments, including the Simple Test for Evaluating Hand Function (STEF), grip strength, pinch meter for grip strength, Canadian occupational performance measure (COPM), as well as nerve conduction study (NCS) before and after the exercise, and evaluated the results. We also analyzed six patients' resting-state functional magnetic resonance imaging (rs-fMRI).
Results:
Two-week robotic rehabilitation improved the STEF, grip strength, and COPM scores when compared with those of the other side. However, no significant effect was observed in the pinch meter and the NCS results. The rs-fMRI data analysis revealed that the robotic rehabilitation augmented two functional connectivities between the left pallidum-right supplementary motor cortex and right insular cortex-right sensorimotor network among the patients, which had beneficial effects.
Conclusion:
The occupational therapy using RAG displayed improved hand dexterity. The enhanced functional connectivities around the sensorimotor network might be associated with the improvement in hand dexterity because of the RAG.

参考文献

[1] Thakore NJ, Lapin BR, Pioro EP. Stage-specific riluzole effect in amyotrophic lateral sclerosis: a retrospective study. Amyotroph Lateral Scler Frontotemporal Degener 2020;21(1–2):140–3.

[2] Shefner J, Heiman-Patterson T, Pioro EP, Wiedau-Pazos M, Liu S, Zhang J, et al. Long-term edaravone efficacy in amyotrophic lateral sclerosis: Post-hoc analyses of Study 19 (MCI186-19). Muscle Nerve 2020;61(2):218–21.

[3] Angelini C, Siciliano G. An updated review on the role of prescribed exercise in the management of Amyotrophic lateral sclerosis. Expert Rev Neurother 2021;21(8): 871–9.

[4] Dal Bello-Haas V, Florence JM. Therapeutic exercise for people with amyotrophic lateral sclerosis or motor neuron disease. Cochrane Database Syst Rev. 2013(5): CD005229.

[5] Tsitkanou S, Della Gatta P, Foletta V, Russell A. The role of exercise as a non- pharmacological therapeutic approach for amyotrophic lateral sclerosis: beneficial or detrimental? Front Neurol 2019;10:783.

[6] Mahoney DJ, Rodriguez C, Devries M, Yasuda N, Tarnopolsky MA. Effects of high- intensity endurance exercise training in the G93A mouse model of amyotrophic lateral sclerosis. Muscle Nerve 2004;29(5):656–62.

[7] Julian TH, Glascow N, Barry ADF, Moll T, Harvey C, Klimentidis YC, et al. Physical exercise is a risk factor for amyotrophic lateral sclerosis: Convergent evidence from Mendelian randomisation, transcriptomics and risk genotypes. EBioMedicine 2021; 68:103397.

[8] Morioka H, Hirayama T, Sugisawa T, Murata K, Shibukawa M, Ebina J, et al. Robot- assisted training using hybrid assistive limb ameliorates gait ability in patients with amyotrophic lateral sclerosis. J Clin Neurosci 2022;99:158–63.

[9] Osuagwu BAC, Timms S, Peachment R, Dowie S, Thrussell H, Cross S, et al. Home- based rehabilitation using a soft robotic hand glove device leads to improvement in hand function in people with chronic spinal cord injury:a pilot study. J NeuroEng Rehabil 2020;17(1).

[10] Radder B, Prange-Lasonder GB, Kottink AI, Gaasbeek L, Holmberg J, Meyer T, et al. A wearable soft-robotic glove enables hand support in ADL and rehabilitation: A feasibility study on the assistive functionality. J Rehabil Assist Technol Eng. 2016; 3:2055668316670553.

[11] Hashida R, Matsuse H, Bekki M, Omoto M, Morimoto S, Hino T, et al. Evaluation of motor-assisted gloves (SEM Glove) for patients with functional finger disorders: A clinical pilot study. Kurume Med J 2019;65(2):63–70.

[12] Irie K, Iseki H, Okamoto S, Okamoto K, Nishimura S, Kagechika K. Development of the modified simple test for evaluating hand function (modified STEF): Construct, reliability, validity, and responsiveness. J Hand Ther 2019;32(3):388–94.

[13] Shindo K, Oba H, Hara J, Ito M, Hotta F, Liu M. Psychometric properties of the simple test for evaluating hand function in patients with stroke. Brain Inj 2015;29 (6):772–6.

[14] Yang SY, Lin CY, Lee YC, Chang JH. The Canadian occupational performance measure for patients with stroke: a systematic review. J Phys Ther Sci 2017;29(3): 548–55.

[15] Seok HY, Park J, Kim YH, Oh KW, Kim SH, Kim BJ. Split hand muscle echo intensity index as a reliable imaging marker for differential diagnosis of amyotrophic lateral sclerosis. J Neurol Neurosurg Psychiatry 2018;89(9):943–8.

[16] Whitfield-Gabrieli S, Nieto-Castanon A. Conn: a functional connectivity toolbox for correlated and anticorrelated brain networks. Brain Connect 2012;2(3):125–41.

[17] Spisak T, Kincses B, Schlitt F, Zunhammer M, Schmidt-Wilcke T, Kincses ZT, et al. Pain-free resting-state functional brain connectivity predicts individual pain sensitivity. Nat Commun 2020;11(1):187.

[18] Apkarian AV, Bushnell MC, Treede RD, Zubieta JK. Human brain mechanisms of pain perception and regulation in health and disease. Eur J Pain 2005;9(4):463–84.

[19] Woo CW, Schmidt L, Krishnan A, Jepma M, Roy M, Lindquist MA, et al. Quantifying cerebral contributions to pain beyond nociception. Nat Commun 2017; 8:14211.

[20] Drory VE, Goltsman E, Reznik JG, Mosek A, Korczyn AD. The value of muscle exercise in patients with amyotrophic lateral sclerosis. J Neurol Sci 2001;191(1–2): 133–7.

[21] Bello-Haas VD, Florence JM, Kloos AD, Scheirbecker J, Lopate G, Hayes SM, et al. A randomized controlled trial of resistance exercise in individuals with ALS. Neurology 2007;68(23):2003–7.

[22] Lunetta C, Lizio A, Sansone VA, Cellotto NM, Maestri E, Bettinelli M, et al. Strictly monitored exercise programs reduce motor deterioration in ALS: preliminary results of a randomized controlled trial. J Neurol 2016;263(1):52–60.

[23] Lazovic M, Nikolic D, Boyer FC, Borg K, Ceravolo MG, Zampolini M, et al. Evidence based position paper on Physical and Rehabilitation Medicine (PRM) practice for people with amyotrophic lateral sclerosis (ALS). Eur J Phys Rehabil Med 2021.

[24] Ivy CC, Smith SM, Materi MM. Upper extremity orthoses use in amyotrophic lateral sclerosis/motor neuron disease: three case reports. Hand (N Y) 2014;9(4):543–50.

[25] Dal Bello-Haas V, Kloos AD, Mitsumoto H. Physical therapy for a patient through six stages of amyotrophic lateral sclerosis. Phys Ther 1998;78(12):1312–24.

[26] Ivy CC, Smith SM, Materi MM. Upper extremity orthoses use in amyotrophic lateral sclerosis/motor neuron disease: a systematic review. Int J Phys Med Rehabil 2015; 3(2):264.

[27] Kim YK, Shin SH. Comparison of effects of transcranial magnetic stimulation on primary motor cortex and supplementary motor area in motor skill learning (randomized, cross over study). Front Hum Neurosci 2014;8:937.

[28] Root DH, Melendez RI, Zaborszky L, Napier TC. The ventral pallidum: Subregion- specific functional anatomy and roles in motivated behaviors. Prog Neurobiol 2015;130:29–70.

[29] Uddin LQ, Nomi JS, H´ebert-Seropian B, Ghaziri J, Boucher O. Structure and function of the human insula. J Clin Neurophysiol 2017;34(4):300–6.

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