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Indirect pathway neurons in the tail of the striatum regulate inhibitory control over sensory driven behavior

Ferrigno, S. M.; Zhang, N.; Iliakis, E.; Pandey, S.; Galanaugh, J.; Fuccillo, M. V.

2025-08-15 neuroscience
10.1101/2025.08.15.670612 bioRxiv
Show abstract

Inhibitory control, or the ability to withhold action in certain situations, is behaviorally essential. Disrupted inhibitory control is linked to various neuropsychiatric symptoms, making it critical to understand the underlying neural basis. We examined how the tail of the striatum (TS), a major basal ganglia sensory hub, regulates actions to sensory stimuli. Mice performed an auditory Go/NoGo task where we recorded cell-specific activity of TS neurons. Both major striatal types were active during target sounds, but non-target sounds preferentially engaged indirect pathway neurons. Temporarily silencing this activity increased errors to non-target stimuli, indicating a role in suppressing inappropriate action. In mice deficient for the synaptic adhesion molecule Neurexin1, a gene linked to autism spectrum disorder and ADHD, TS indirect pathway recruitment was reduced, and these mice demonstrated auditory-specific inhibitory control deficits. Altogether, these findings highlight a subcortical target to potentially improve attentional and behavioral regulation in neurodevelopmental disorders. TeaserPosterior striatal circuits control sensory-guided actions and are disrupted in a rodent model of neurodevelopmental disorders.

Published in Science Advances (predicted rank #9) · training set

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