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一种触发主动式踝足矫形器以诱导皮质神经可塑性的闭环脑机接口。

A closed-loop brain-computer interface triggering an active ankle-foot orthosis for inducing cortical neural plasticity.

作者信息

Xu Ren, Jiang Ning, Mrachacz-Kersting Natalie, Lin Chuang, Asín Prieto Guillermo, Moreno Juan C, Pons Jose L, Dremstrup Kim, Farina Dario

出版信息

IEEE Trans Biomed Eng. 2014 Jul;61(7):2092-101. doi: 10.1109/TBME.2014.2313867. Epub 2014 Mar 26.

DOI:10.1109/TBME.2014.2313867
PMID:24686231
Abstract

In this paper, we present a brain-computer interface (BCI) driven motorized ankle-foot orthosis (BCI-MAFO), intended for stroke rehabilitation, and we demonstrate its efficacy in inducing cortical neuroplasticity in healthy subjects with a short intervention procedure (∼15 min). This system detects imaginary dorsiflexion movements within a short latency from scalp EEG through the analysis of movement-related cortical potentials (MRCPs). A manifold-based method, called locality preserving projection, detected the motor imagery online with a true positive rate of 73.0 ± 10.3%. Each detection triggered the MAFO to elicit a passive dorsiflexion. In nine healthy subjects, the size of the motor-evoked potential (MEP) elicited by transcranial magnetic stimulation increased significantly immediately following and 30 min after the cessation of this BCI-MAFO intervention for ∼15 min ( p = 0.009 and , respectively), indicating neural plasticity. In four subjects, the size of the short latency stretch reflex component did not change following the intervention, suggesting that the site of the induced plasticity was cortical. All but one subject also performed two control conditions where they either imagined only or where the MAFO was randomly triggered. Both of these control conditions resulted in no significant changes in MEP size (p = 0.38 and p = 0.15). The proposed system provides a fast and effective approach for inducing cortical plasticity through BCI and has potential in motor function rehabilitation following stroke.

摘要

在本文中,我们展示了一种用于中风康复的脑机接口(BCI)驱动的电动踝足矫形器(BCI-MAFO),并通过一个简短的干预程序(约15分钟)证明了其在健康受试者中诱导皮质神经可塑性的功效。该系统通过分析与运动相关的皮质电位(MRCPs),在短潜伏期内从头皮脑电图检测到想象中的背屈运动。一种基于流形的方法,称为局部保留投影,在线检测运动想象,真阳性率为73.0±10.3%。每次检测都会触发MAFO引发被动背屈。在9名健康受试者中,经颅磁刺激诱发的运动诱发电位(MEP)的大小在这种BCI-MAFO干预约15分钟后立即以及停止干预30分钟后显著增加(分别为p = 0.009和 ),表明神经可塑性。在4名受试者中,干预后短潜伏期牵张反射成分的大小没有变化,这表明诱导可塑性的部位是皮质。除一名受试者外,所有受试者还进行了两种对照条件,即他们要么只进行想象,要么MAFO被随机触发。这两种对照条件均导致MEP大小无显著变化(p = 0.38和p = 0.15)。所提出的系统为通过BCI诱导皮质可塑性提供了一种快速有效的方法,并且在中风后的运动功能康复方面具有潜力。

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