脑-机接口
物理医学与康复
冲程(发动机)
运动(音乐)
功能连接
培训(气象学)
心理学
康复
静息状态功能磁共振成像
中风恢复
医学
神经科学
脑电图
工程类
气象学
美学
物理
哲学
机械工程
作者
Bálint Várkuti,Cuntai Guan,Yaozhang Pan,Kok Soon Phua,Kai Keng Ang,Christopher Wee Keong Kuah,Karen Sui Geok Chua,Beng Ti Ang,Niels Birbaumer,Ranganatha Sitaram
标识
DOI:10.1177/1545968312445910
摘要
Background. Robot-assisted training may improve motor function in some hemiparetic patients after stroke, but no physiological predictor of rehabilitation progress is reliable. Resting state functional magnetic resonance imaging (RS-fMRI) may serve as a method to assess and predict changes in the motor network. Objective. The authors examined the effects of upper-extremity robot-assisted rehabilitation (MANUS) versus an electroencephalography-based brain computer interface setup with motor imagery (MI EEG-BCI) and compared pretreatment and posttreatment RS-fMRI. Methods. In all, 9 adults with upper-extremity paresis were trained for 4 weeks with a MANUS shoulder-elbow robotic rehabilitation paradigm. In 3 participants, robot-assisted movement began if no voluntary movement was initiated within 2 s. In 6 participants, MI-BCI–based movement was initiated if motor imagery was detected. RS-fMRI and Fugl-Meyer (FM) upper-extremity motor score were assessed before and after training. Results. The individual gain in FM scores over 12 weeks could be predicted from functional connectivity changes (FCCs) based on the pre-post differences in RS-fMRI measurements. Both the FM gain and FCC were numerically higher in the MI-BCI group. Increases in FC of the supplementary motor area, the contralesional and ipsilesional motor cortex, and parts of the visuospatial system with mostly association cortex regions and the cerebellum correlated with individual upper-extremity function improvement. Conclusion. FCC may predict the steepness of individual motor gains. Future training could therefore focus on directly inducing these beneficial increases in FC. Evaluation of the treatment groups suggests that MI is a potential facilitator of such neuroplasticity.
科研通智能强力驱动
Strongly Powered by AbleSci AI