Literature DB >> 32997632

Interhemispheric Functional Reorganization and its Structural Base After BCI-Guided Upper-Limb Training in Chronic Stroke.

Kai Yuan, Xin Wang, Cheng Chen, Cathy Choi-Yin Lau, Winnie Chiu-Wing Chu, Raymond Kai-Yu Tong.   

Abstract

Brain-computer interface (BCI)-guided robot-assisted upper-limb training has been increasingly applied to stroke rehabilitation. However, the induced long-term neuroplasticity modulation still needs to be further characterized. This study investigated the functional reorganization and its structural base after BCI-guided robot-assisted training using resting-state fMRI, task-based fMRI, and diffusion tensor imaging (DTI) data. The clinical improvement and the neurological changes before, immediately after, and six months after 20-session BCI-guided robot hand training were explored in 14 chronic stroke subjects. The structural base of the induced functional reorganization and motor improvement were also investigated using DTI. Repeated measure ANOVA indicated long-term motor improvement was found (F[2, 26] = 6.367, p = 0.006). Significantly modulated functional connectivity (FC) was observed between ipsilesional motor regions (M1 and SMA) and some contralesional areas (SMA, PMd, SPL) in the seed-based analysis. Modulated FC with ipsilesional M1 was significantly correlated with motor function improvement (r = 0.6455, p = 0.0276). Besides, increased interhemispheric FC among the sensorimotor area from resting-state data and increased laterality index from task-based data together indicated the re-balance of the two hemispheres during the recovery. Multiple linear regression models suggested that both motor function improvement and the functional change between ipsilesional M1 and contralesional premotor area were significantly associated with the ipsilesional corticospinal tract integrity. The results in the current study provided solid support for stroke recovery mechanism in terms of interhemispheric interaction and its structural substrates, which could further enhance the understanding of BCI training in stroke rehabilitation. This study was registered at https://clinicaltrials.gov (NCT02323061).

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Year:  2020        PMID: 32997632     DOI: 10.1109/TNSRE.2020.3027955

Source DB:  PubMed          Journal:  IEEE Trans Neural Syst Rehabil Eng        ISSN: 1534-4320            Impact factor:   3.802


  5 in total

1.  BCI Training Effects on Chronic Stroke Correlate with Functional Reorganization in Motor-Related Regions: A Concurrent EEG and fMRI Study.

Authors:  Kai Yuan; Cheng Chen; Xin Wang; Winnie Chiu-Wing Chu; Raymond Kai-Yu Tong
Journal:  Brain Sci       Date:  2021-01-06

2.  Modulation of Functional Connectivity and Low-Frequency Fluctuations After Brain-Computer Interface-Guided Robot Hand Training in Chronic Stroke: A 6-Month Follow-Up Study.

Authors:  Cathy C Y Lau; Kai Yuan; Patrick C M Wong; Winnie C W Chu; Thomas W Leung; Wan-Wa Wong; Raymond K Y Tong
Journal:  Front Hum Neurosci       Date:  2021-01-20       Impact factor: 3.169

3.  Optogenetics stimulates nerve reorganization in the contralesional anterolateral primary motor cortex in a mouse model of ischemic stroke.

Authors:  Bei-Yao Gao; Yi-Xing Cao; Peng-Fei Fu; Ying Xing; Dan Liang; Shan Jiang; Yu-Xiao Xie; Min Li
Journal:  Neural Regen Res       Date:  2022-07       Impact factor: 5.135

4.  Functional Reorganization After Four-Week Brain-Computer Interface-Controlled Supernumerary Robotic Finger Training: A Pilot Study of Longitudinal Resting-State fMRI.

Authors:  Yuan Liu; Shuaifei Huang; Zhuang Wang; Fengrui Ji; Dong Ming
Journal:  Front Neurosci       Date:  2022-02-11       Impact factor: 4.677

5.  Neural correlates of user learning during long-term BCI training for the Cybathlon competition.

Authors:  Stefano Tortora; Gloria Beraldo; Francesco Bettella; Emanuela Formaggio; Maria Rubega; Alessandra Del Felice; Stefano Masiero; Ruggero Carli; Nicola Petrone; Emanuele Menegatti; Luca Tonin
Journal:  J Neuroeng Rehabil       Date:  2022-07-05       Impact factor: 5.208

  5 in total

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