Search bioRxiv⌕ Search

Biology subjects

Fayyad, M.

Publications and source records attributed to Fayyad, M..

2 recordsLinked to original sources

Layer-specific reorganization of mnemonic representations in primate retrosplenial cortex during learning

Rapid learning of associations between co-occurring stimuli is essential for episodic memory formation. The retrosplenial cortex (RSC) is strongly interconnected with the hippocampus, and in rodents, the RSC has been shown to support spatial navigation and fear conditioning. Although lesion and neuroimaging studies in humans and macaques have further implicated the RSC in episodic memory, it is unclear how memory representations form and evolve in the RSC. Here we show that representations of memorized contexts in primate RSC form within minutes. These initial representations reorganize as the memory matures, with a shift in the weight of neuronal contributions from superficial to deep RSC layers across an hour and increased local connectivity between deep layer neurons. Because RSC superficial and deep layers represent input and output layers respectively, it suggests that hippocampal inputs provide context information to superficial layers during early learning, and this context information consolidates in deep RSC layers.

neuroscience↗

Primate thalamic nuclei select abstract rules and shape prefrontal dynamics

Flexible behavior depends on abstract rules to generalize beyond specific instances, and outcome monitoring to adjust actions. Cortical circuits are posited to read out rules from high-dimensional representations of task-relevant variables in prefrontal cortex (PFC). We instead hypothesized that converging inputs from PFC, directly or via basal ganglia (BG), enable thalamus to select rules. We measured activity across PFC and connected thalamic nuclei of monkeys applying rules. Abstract rule information first appeared in ventroanterior thalamus (VA) - the main thalamic hub between BG and PFC. Mediodorsal thalamus (MD) also represented rule information before PFC, persisting to help maintain activation of relevant PFC cell ensembles. MD, a major recipient of midbrain dopamine input, was first to represent information about behavioral outcomes. A PFC-BG-thalamus model reproduced key findings, and thalamic-lesion modeling disrupted PFC rule representations. This suggests that thalamus selects high-level cognitive information from PFC and monitors behavioral outcomes of these selections.

neuroscience↗