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神经假体治疗足下垂的研究进展:综述

Advances in neuroprosthetic management of foot drop: a review.

机构信息

Neural Rehabilitation Group, Cajal Institute, Spanish National Research Council (CSIC), Av. Doctor Arce, 37, 28002, Madrid, Spain.

College of Information Technology (CIT), The United Arab Emirates University, P.O. Box 15551, Al Ain, UAE.

出版信息

J Neuroeng Rehabil. 2020 Mar 25;17(1):46. doi: 10.1186/s12984-020-00668-4.

Abstract

This paper reviews the technological advances and clinical results obtained in the neuroprosthetic management of foot drop. Functional electrical stimulation has been widely applied owing to its corrective abilities in patients suffering from a stroke, multiple sclerosis, or spinal cord injury among other pathologies. This review aims at identifying the progress made in this area over the last two decades, addressing two main questions: What is the status of neuroprosthetic technology in terms of architecture, sensorization, and control algorithms?. What is the current evidence on its functional and clinical efficacy? The results reveal the importance of systems capable of self-adjustment and the need for closed-loop control systems to adequately modulate assistance in individual conditions. Other advanced strategies, such as combining variable and constant frequency pulses, could also play an important role in reducing fatigue and obtaining better therapeutic results. The field not only would benefit from a deeper understanding of the kinematic, kinetic and neuromuscular implications and effects of more promising assistance strategies, but also there is a clear lack of long-term clinical studies addressing the therapeutic potential of these systems. This review paper provides an overview of current system design and control architectures choices with regard to their clinical effectiveness. Shortcomings and recommendations for future directions are identified.

摘要

本文回顾了在治疗足下垂的神经假体管理方面取得的技术进步和临床成果。由于功能性电刺激在治疗中风、多发性硬化症、脊髓损伤等多种疾病患者方面具有矫正能力,因此得到了广泛应用。本综述旨在确定过去二十年在该领域取得的进展,主要解决两个问题:神经假体技术在架构、传感器和控制算法方面的现状如何?其功能和临床疗效的当前证据是什么?结果表明,能够自我调整的系统以及在个体情况下充分调节辅助的闭环控制系统非常重要。其他先进策略,如结合变频率和恒频率脉冲,也可能在减少疲劳和获得更好的治疗效果方面发挥重要作用。该领域不仅需要更深入地了解运动学、动力学和神经肌肉学的影响和更有前途的辅助策略的效果,而且显然缺乏长期的临床研究来解决这些系统的治疗潜力。本文综述了当前系统设计和控制架构选择方面的临床效果。确定了未来方向的缺点和建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99ec/7093967/0729bac39b88/12984_2020_668_Fig1_HTML.jpg

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