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Giraudet, M.

Publications and source records attributed to Giraudet, M..

2 recordsLinked to original sources

Adeno-associated virus delivered Cre recombinase as a versatile strategy for modeling focal neuronal lesions

Lesion studies remain central to neuroscience, offering key insights into brain-behavior relationships. Excitotoxic agents, though widely used, often produce inconsistent, non-specific, and ethically complex outcomes. In contrast, optogenetics and chemogenetics enable precise, reversible manipulations but pose technical and interpretational challenges, including cost and non-physiological activation. There remains a need for robust, controlled, and ethical lesion methods. Here, we present Cre recombinase expression as a reproducible alternative to excitotoxic lesions in mice. Using high titration adeno-associated viral (AAV) vectors, we show that Cre expression induces focal neurodegeneration across brain regions, affecting both excitatory and inhibitory neurons. This effect is independent of viral serotype or fluorescent tags and is not visible with standard staining but is revealed by neuronal markers. The resulting neuronal loss is followed by glial remodeling and significant behavioral alterations. AAV-mediated Cre expression thus provides a powerful, genetically targeted lesion model that bridges classical and modern approaches to circuit manipulation.

neuroscience↗

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↗