Authors
Peijia Yu, Gengshuo John Tian, Brent Doiron
Published in
bioRxiv : the preprint server for biology. Jul 21, 2026. Epub Jul 21, 2026.
Abstract
Primary sensory cortices often organize neurons with similar stimulus preference into spatially functional maps. Recent work in mouse primary visual cortex (V1) has established that neuronal tuning to the orientation of visual grating stimuli is organized into 'micro-clusters', where physically close neuron pairs (~ 20 µ m) share highly similar orientation preferences, but the organization is unstructured beyond this narrow range. This fine-scale organization is seemingly at odds with the underlying intracortical circuitry in mouse V1 whose spatial extent is an order of magnitude broader (100 ~ 200 µ m). In this study, we explore an activity-dependent synaptic plasticity model of spatially structured thalamo-cortical connectivity. We develop theory under asymptotic conditions specific for mouse V1, and derive concrete circuit conditions under which 'micro-clusters' naturally develop. In particular, the recurrent interaction among V1 neurons requires an additional component over a 'micro'-spatial scale, while the spatial profiles of balanced excitation and inhibition support an effective 'micro'-scale interaction. Together, our results provide a developmental mechanism and analytical framework linking thalamo-cortical development, recurrent circuit structure, and the emergence of functional organization in primary visual cortex.
PMID:
42539234
Bibliographic data and abstract were imported from PubMed on 01 Aug 2026.
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