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Guillamon-Vivancos, T.

Publications and source records attributed to Guillamon-Vivancos, T..

2 recordsLinked to original sources

Combinatorial Cell-Adhesion and Activity Codes Instruct Cortical Modality Identity

The emergence of functional sensory modalities requires precise cortical arealization and appropriate thalamocortical targeting. Although early morphogen gradients set broad cortical territories, the mechanisms that specify sensory identity and guide modality-specific thalamocortical targeting remain unknown. Here, we identify an embryonic set of activity-independent cortical "protogenes", prominently enriched for cell-adhesion molecules, that are differentially expressed between primary somatosensory (S1) and visual (V1) cortices prior to thalamic innervation. These adhesion programs are selectively localized to layer 4, the main thalamo-recipient layer, and strikingly mirror the adhesion profiles of their corresponding thalamic nuclei, suggesting partner recognition. Disrupting thalamic activity alters modality-specific spontaneous cortical dynamics and the postnatal expression of another set of modality-specific genes, indicating a modulatory role for thalamic activity in cortical identity. These findings support a two-step model in which cortical identity is primed by adhesion codes driving modality-specific thalamocortical targeting, and later refined by patterned thalamic activity to establish functional cortical modalities.

neuroscience↗

Transcriptional and functional profiles of muscarinic receptor-expressing neurons in primate lateral prefrontal and anterior cingulate cortices

Acetylcholine modulates anterior cingulate (ACC) and lateral prefrontal (LPFC) cortices for cognitive-motivational integration, via specific m1-m4 muscarinic receptors (mAChR) encoded by CHRM1-4 genes. Single-nucleus RNA sequencing and mRNA-protein histology in macaques revealed CHRM3 to be the most enriched mAChR gene in neurons, while m1 predominates at the protein level, likely due to nuclear retention of CHRM3 and cytoplasmic trafficking of CHRM1. CHRM3 and CHRM1 showed strong co-expression and functional overlap, and were transcriptomically-distinct from CHRM2, which was uniquely enriched in deep layer excitatory and PVALB+ inhibitory neurons. Although CHRM+ cell distributions were similar between areas, CHRM1-3+ excitatory neurons in ACC exhibited upregulation of synaptic plasticity genes relative to LPFC. Functional in vitro experiments confirm a more robust cholinergic-mediated decrease in excitatory:inhibitory synaptic ratio in ACC than in LPFC neurons, accompanied by compensatory changes in spine morphology. These findings highlight region-specific acetylcholine signaling essential for flexible processing, learning and memory.

neuroscience↗