Small, correlated changes in synaptic connectivity may facilitate rapid motor learning.

Feulner, Barbara; Perich, Matthew G; Chowdhury, Raeed H; Miller, Lee E; Gallego, Juan A; Clopath, Claudia · Nat Commun · 2022

basic_science · Level V

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Abstract

Animals rapidly adapt their movements to external perturbations, a process paralleled by changes in neural activity in the motor cortex. Experimental studies suggest that these changes originate from altered inputs (H<sub>input</sub>) rather than from changes in local connectivity (H<sub>local</sub>), as neural covariance is largely preserved during adaptation. Since measuring synaptic changes in vivo remains very challenging, we used a modular recurrent neural network to qualitatively test this interpretation. As expected, H<sub>input</sub> resulted in small activity changes and largely preserved covariance. Surprisingly given the presumed dependence of stable covariance on preserved circuit connectivity, H<sub>local</sub> led to only slightly larger changes in activity and covariance, still within the range of experimental recordings. This similarity is due to H<sub>local</sub> only requiring small, correlated connectivity changes for successful adaptation. Simulations of tasks that impose increasingly larger behavioural changes revealed a growing difference between H<sub>input</sub> and H<sub>local</sub>, which could be exploited when designing future experiments.

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