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de Miranda, A.

Publications and source records attributed to de Miranda, A..

2 recordsLinked to original sources

Secondary motor cortex tracks decision value and supports behavioral flexibility during non-instructed choice

Optimal decision-making relies on interconnected frontal brain regions, which permit animals to adapt their decisions based on their internal state, experience, and environmental context. Among them, the secondary motor cortex (M2) shows earlier decision-related activity required for sensory-guided action selection. However, the role of M2 in adaptive decision-making in the absence of instructive sensory cues remains unclear. Under such conditions, action-selection relies on abstract representations of actions and their values. Using in vivo microscopy and modeling, we showed that M2 neurons in mice exhibited persistent activity encoding decision values (DV) predicting the probability of action-selection during a non-cue-guided lever task. This was confirmed by the reduced reversal performance upon M2 optogenetic inhibition prior to action-selection. Furthermore, updates in DV determined the rate at which learning is reversed. Together, these results provide strong evidence of the use of DV by M2 to adapt choice in the absence of instructive sensory cues. Declaration of interestsThe authors declare no competing financial interests.

neuroscience↗

AMPAR trafficking dependent LTP initiates cortical remapping and adaptive behaviors during sensory experience

Cortical plasticity improves behaviors and helps recover lost functions after injury by adapting neuronal computations. However, the underlying synaptic and circuit mechanisms remain unclear. In mice, we found that trimming all but one whisker enhances sensory responses from the spared whisker in the somatosensory barrel cortex and occludes whisker-mediated long-term potentiation (w-LTP) in vivo. In addition, whisking-dependent behaviors that are initially impaired by single whisker experience (SWE) rapidly recover when associated cortical regions remap. Blocking the surface diffusion of AMPA receptors (AMPARs) suppresses the expression of w-LTP in naive mice with all whiskers intact, demonstrating that physiologically induced LTP in vivo requires AMPARs trafficking. We used this approach to demonstrate that w-LTP is required for SWE-mediated strengthening of synaptic inputs and initiates the recovery of previously learned skills during the early phases of SWE. Taken together, our data reveal that w-LTP mediates cortical remapping and behavioral improvement upon partial sensory deafferentation and demonstrates that restoration of sensory function after peripheral injury can be manipulated.

neuroscience↗