Learning Enhances Behaviorally Relevant Representations in Apical Dendrites
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Learning alters cortical representations and improves perception. Apical tuft dendrites in cortical layer 1, which are unique in their connectivity and biophysical properties, may be a key site of learning-induced plasticity. We used both two-photon and SCAPE microscopy to longitudinally track tuft-wide calcium spikes in apical dendrites of layer 5 pyramidal neurons in barrel cortex as mice learned a tactile behavior. Mice were trained to discriminate two orthogonal directions of whisker stimulation. Reinforcement learning, but not repeated stimulus exposure, enhanced tuft selectivity for both directions equally, even though only one was associated with reward. Selective tufts emerged from initially unresponsive or low-selectivity populations. Animal movement and choice did not account for changes in stimulus selectivity. Enhanced selectivity persisted even after rewards were removed and animals ceased performing the task. We conclude that learning produces long-lasting realignment of apical dendrite tuft responses to behaviorally relevant dimensions of a task.
Dendrites endow artificial neural networks with accurate, robust and parameter-efficient learning.
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Learning enhances behaviorally relevant representations in apical dendrites.
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Dendrites endow artificial neural networks with accurate, robust and parameter-efficient learning.
Chavlis S, Poirazi P ArXiv. 2024; .
PMID: 39314509 PMC: 11419189.
Stability of cross-sensory input to primary somatosensory cortex across experience.
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PMID: 39149350 PMC: 11326227. DOI: 10.1101/2024.08.07.607026.