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bioRxiv · 10.1101/2021.12.15.472763

Spatially bivariate EEG-neurofeedback can manipulate interhemispheric rebalancing of M1 excitability

Abstract

Human behavior requires interregional crosstalk to employ the sensorimotor processes in the brain. Although some external neuromodulation tools have been used to manipulate interhemispheric sensorimotor activity, a central controversy concerns whether this activity can be volitionally controlled. Experimental tools lack the power to up- or down-regulate the state of the targeted hemisphere over a large dynamic range and, therefore, cannot evaluate the possible volitional control of the activity. We overcame this difficulty by using the recently developed method of spatially bivariate electroencephalography (EEG)-neurofeedback to systematically enable participants to manipulate their bilateral sensorimotor activities. Herein, we report that bi-directional changes in ipsilateral excitability to the imagined hand (conditioning hemisphere) affect interhemispheric inhibition (IHI) assessed by paired-pulse transcranial magnetic stimulation paradigm. In addition, participants were able to robustly manipulate the IHI magnitudes. Further physiological analyses revealed that the self-manipulation of IHI magnitude reflected interhemispheric connectivity in EEG and TMS, which was accompanied by intrinsic bilateral cortical oscillatory activities. Our results provide clear neuroscientific evidence regarding the inhibitory interhemispheric sensorimotor activity and IHI manipulator, thereby challenging the current theoretical concept of recovery of motor function for neurorehabilitation.

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BibTeXRIS

Hayashi, M., Okuyama, K., Mizuguchi, N., Hirose, R., Okamoto, T., Kawakami, M., Ushiba, J.. 2021-12-16. Spatially bivariate EEG-neurofeedback can manipulate interhemispheric rebalancing of M1 excitability. https://doi.org/10.1101/2021.12.15.472763

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