Functional reorganization of motor cortex connectivity during learning
Daie, K.; Aitken, K.; Rozsa, M.; Bull, M. S.; Humphreys, P. C.; Wang, Z. C.; Kinsey, L.; Kulkarni, M.; Stachenfeld, K. L.; Eckstein, M. K.; Kurth-Nelson, Z.; Clopath, C.; Lillicrap, T. P.; Botvinick, M.; Golub, M.; Mihalas, S.; Svoboda, K.
Show abstract
Learning new tasks requires the brain to reshape the flow of neural activity, but how these changes arise from dynamic neural connectivity remains unclear. Here, we used two-photon photostimulation and calcium imaging to map learning-related changes in connectivity in layer 2/3 of mouse motor cortex, induced by learning of an optical brain-computer interface (BCI) task. Mice rapidly (within minutes) learned to change activity in a conditioned neuron to earn rewards. Activity changes were sparse; the conditioned neuron increased activity more than surrounding neurons. Mapping connectivity before and after learning revealed changes in motor cortex connectivity, enriched in neurons that were active before trial initiation, analogous to motor cortex populations that are active preceding movement. Motor cortex plasticity reroutes preparatory activity to neurons that are active later and control the conditioned neuron. Our findings show how rapid learning can be achieved through structured changes in motor cortex connectivity.
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