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Pemberton, L.

Publications and source records attributed to Pemberton, L..

2 recordsLinked to original sources

Pre-existing and emergent cortical neuronal assembly sequences during learning

Neuronal assemblies -- groups of co-active neurons -- support memory consolidation and retrieval. In the hippocampus, assemblies can pre-exist learning and contribute to memory through sequential activation. Whether similar principles apply to higher cortical areas for flexible memory storage like the orbitofrontal cortex (OFC) remains unclear. Using a novel ground truth-validated clustering approach, we investigated the activity of longitudinally tracked mouse OFC neurons during cue-reward memory acquisition and maintenance. Assemblies active after learning pre-existed the learning and exhibited two distinct sequential dynamics consistent with memory consolidation or retrieval. Consolidation sequences emerged during learning, while retrieval sequences partly recruited pre-existing reward sequences. These findings demonstrate that OFC learning recruits pre-existing networks flexibly repurposed for new associations, revealing circuit motifs that may enable cortical memory storage.

neuroscience↗

Ramping dynamics in the frontal cortex unfold over multiple timescales during motor planning

Plans are formulated and refined over the period leading to their execution, ensuring that the appropriate behavior is enacted at just the right time. While existing evidence suggests that memory circuits convey the passage of time through diverse neuronal responses, it remains unclear whether the neural circuits involved in planning behavior exhibit analogous temporal dynamics. Using publicly available data, we analyzed how activity in the frontal motor cortex evolves during motor planning. Individual neurons exhibited diverse ramping activity throughout a delay interval that preceded a planned movement. The collective activity of these neurons was useful for making temporal predictions that became increasingly precise as the movement time approached. This temporal diversity gave rise to a spectrum of encoding patterns, ranging from stable to dynamic representations of the upcoming movement. Our results indicate that neural activity unfolds over multiple timescales during motor planning, suggesting a shared mechanism in the brain for processing temporal information related to both past memories and future plans.

neuroscience↗