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Ribeiro, M. I.

Publications and source records attributed to Ribeiro, M. I..

2 recordsLinked to original sources

Hierarchy in the mouse frontal cortex in mnemonic olfactory decision-making

The prefrontal cortex plays a critical role in integrating the memory of a recent experience to guide context-dependent decisions, yet how the finer, sub-steps of decision formation are physiologically implemented remains poorly understood. Using an olfactory delayed non-match-to-sample task with graded stimulus similarity in head-fixed mice, we examined how decisions emerge when a current sensory event and a memory of a recent event must be compared. With high-density extracellular recordings across the frontal cortex, we characterized odor-specific delay activity and decision-related signals. Interestingly, the secondary motor cortex showed minimal sensory coding, suggesting that areas engaged in mnemonic decision-making differ from those involved in simpler, stimulus-response decision-making in the rodent brain. Rather, there was a gradual emergence from sensory representations to choice-related activity, with intermediate regions showing choice modulations that retain stimulus sensitivity that arises with early timing, as well as balanced match vs. non-match selectivity. These results suggest that mnemonic decision-making is supported by a distributed frontal network in which sensory and choice signals are gradually integrated, rather than localized to a single comparator region.

neuroscience↗

Behavioral state regulates the dynamics of memory consolidation

Long-term memories are consolidated over time, progressively becoming more stable and resistant to interference. Memory consolidation occurs offline and often involves transfer of memories from one brain site to another. For many motor memories, consolidation is thought to involve early learning in cerebellar cortex that is subsequently transferred to the cerebellar nuclei. Here we report that in mice, engaging in locomotor activity during training in a classical conditioning task shifts the critical time window for memory consolidation, from just after training sessions, to between trials, within sessions. This temporal shift requires natural patterns of cerebellar granule cell activity during intertrial intervals and is accompanied by earlier involvement of the downstream cerebellar nucleus. These results reveal that the critical time window for cerebellar memory consolidation can be surprisingly brief, on a timescale from seconds to minutes, and that it is dynamically regulated by behavioral state.

neuroscience↗