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bioRxiv · 10.64898/2026.08.27.746829

A nonlinear inhibition pathway underlying cortical responses to tuned holographic optogenetic perturbations

Abstract

Optogenetics enables causal manipulation of cortical activity. Perturbation responses can be counterintuitive due to network interactions, making theory essential for predicting them. Existing approaches often rely on linear approximations, which fail for many biologically relevant perturbations. Here we develop a nonlinear theory of responses to holographic perturbations in cell-type-specific recurrent networks with structured connectivity. We fit a nonlinear model to mouse V1 data, which shows cotuned-ensemble suppression: perturbing spatially clustered neurons with similar preferred orientations yields markedly stronger short-range suppression than perturbing untuned ensembles. We show that cotuned-ensemble suppression arises from a feature-tuned, nonlinear inhibition pathway implicating somatostatin-positive (SST) interneurons. The theory predicts that cotuned ensembles suppress parvalbumin-positive (PV) neurons but facilitate SST neurons, and links the degree of cotuned-ensemble suppression or facilitation to the variance of the SST response. This framework identifies mechanisms by which nonlinear inhibition sculpts cortical dynamics and establishes a predictive basis for targeted optogenetic interventions.

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BibTeXRIS

Chau, H. Y., Oldenburg, I. A., Miller, K. D., Palmigiano, A.. 2026-09-03. A nonlinear inhibition pathway underlying cortical responses to tuned holographic optogenetic perturbations. https://doi.org/10.64898/2026.08.27.746829

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