bioRxiv · 10.1101/2020.06.02.129924
Cortical beta oscillations reflect the contextual gating of visual action feedback
Abstract
In sensorimotor integration, the brain needs to decide how its predictions should accommodate novel evidence by gating sensory data depending on the current context. Here, we examined the oscillatory correlates of this process using magnetoencephalography (MEG). We used virtual reality to decouple visual (virtual) and proprioceptive (real) hand postures during a task requiring matching either modalitys grasping movements to a target oscillation. Thus, we rendered visual information either task-relevant or a (to-be-ignored) distractor. Under visuo-proprioceptive incongruence, occipital beta power decreased relative to congruence when vision was task-relevant but increased when it had to be ignored. Dynamic causal modelling (DCM) revealed that this interaction was best explained by diametrical, task-dependent changes in visual gain. These results suggest a crucial role for beta oscillations in sensorimotor integration; particularly, in the contextual gating (i.e., gain or precision control) of visual vs proprioceptive action feedback, depending on concurrent behavioral demands.
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Limanowski, J., Litvak, V., Friston, K.. 2020-06-03. Cortical beta oscillations reflect the contextual gating of visual action feedback. https://doi.org/10.1101/2020.06.02.129924
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