Active Psychology & Behaviour Brain & Nervous System

Inhibitory control of visually-guided behaviour

In plain English

AI plain-English summary

A mouse freezes mid-step as a shadow passes overhead, then a moment later ignores a similar shadow to continue foraging—the brain has just switched which visual pathway controls its behaviour, and researchers want to know how. The problem is that scientists understand how the brain turns what animals see into actions, but not how it flexibly chooses *which* action to take when the same visual cue appears in different contexts. This project targets a small structure called the ventral lateral geniculate nucleus (vLGN), a cluster of inhibitory neurons in the thalamus that pilot data suggest can suppress instinctive visual responses. The team will use genetic tools, calcium imaging, and optogenetics in mice to map the circuits that let the vLGN coordinate both instinctive and learned visually-guided behaviours. This is fundamental science with no immediate practical application. Understanding how inhibitory circuits in the thalamus gate sensory-driven actions could, in the long term, inform treatments for conditions where behavioural flexibility breaks down—such as impulse control disorders or certain forms of visual neglect—but the immediate goal is simply to explain a core mechanism of how brains work.

View original technical description
The brain utilises cortical and subcortical pathways to transform sensory information into action, giving rise to learned and instinctive sensory-guided behaviours. How these pathways interact to generate flexible behaviour, allowing animals to react differently to the same environmental stimuli depending on circumstance, remains poorly understood. We propose that inhibitory circuits in the thalamus are essential for flexible control of sensory-guided actions. Our pilot data show that the ventral lateral geniculate nucleus (vLGN) - a prethalamic structure composed of different classes of inhibitory projection neurons - provides inhibitory control of an instinctive visually-evoked behaviour. We will identify the neural circuit mechanisms of this control and determine when it is engaged. Moreover, since the vLGN is extensively connected with visual circuits in the neocortex and the midbrain, we will test if and how this nucleus can coordinate these visual pathways to guide both instinctive and learned visually-guided behaviours. We will achieve these aims by combining genetic tools with calcium imaging, electrophysiological recordings, cell-type specific optogenetic manipulations and quantitative behaviour in animals performing visually-guided tasks. This work will generate detailed understanding of mechanisms by which the brain can orchestrate behavioural responses to environmental stimuli.

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Researchers

Sonja Hofer (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

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Neural circuits underlying attentional modulation in mouse visual cortex
Neural circuitry underlying non-sensory responses in sensory cortex

Original classification

Investigator Award in Science

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