Completed Psychology & Behaviour Plants, Animals & Ecology

Imaging visuomotor transformations in the brain

In plain English

AI plain-English summary

A zebrafish sees a dark shape overhead and, within a fraction of a second, its brain decides whether to flee or ignore it. This project aims to watch that decision happen, neuron by neuron. The problem is a fundamental gap in sensory neuroscience: we know that brains build internal models of the world, but we do not understand the precise patterns of neural activity that turn a visual signal into a specific behaviour—approach or avoid. The researchers will image every neuron in the optic tectum of larval zebrafish while simultaneously recording the animal’s eye and tail movements. This allows them to map, in real time, how the brain encodes a predator versus a prey stimulus and how that encoding drives a mutually exclusive response. This is fundamental science. It will not produce a medical treatment or a new technology tomorrow. But understanding how a vertebrate brain transforms sensory input into behavioural output is a core piece of the puzzle of how brains work. Similar fundamental work on neural circuits in simpler animals has, in the past, laid the groundwork for everything from brain-computer interfaces to treatments for movement disorders. A clearer picture of visuomotor transformation could, in the long term, inform artificial vision systems or rehabilitation strategies for people with damage to visual or motor pathways.

View original technical description
A central goal of sensory neuroscience is to understand how the brain builds internal representations of the external world and how these representations guide decision making and behaviour. For example, what patterns of activity in the brain allow an animal to distinguish prey from predator and how does this activity trigger the appropriate behavioural response? To address this fundamental problem we will use the optic tectum of larval zebrafish which converts visual information from the retina into hunting and escape behaviours. Thus, the tectum must generate distinct visual representations, prey vs predator, which biases a decision between mutually exclusive responses - move toward or away. To understand how the tectum does this we will combine high speed functional imaging of every neuron in the tectum with video recording of eye and tail movements. These approaches will allow us to describe how visual information is encoded in the tectum and to define the activity patterns that drive eye and tail movements associated with either approach or avoidance behaviours. Our project will generate new insights into how the brain enocdes visual information and the nature of sensory representations that drive behaviour.

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Researchers

Martin Meyer (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Neural mechanisms linking perception to action in zebrafish prey hunting behaviour
From vision to action: Systems analysis of sensorimotor circuitry controlling visually-guided behaviour.
Control and coordination of oculomotor and locomotor behaviour by hindbrain circuits in the larval zebrafish
Transforming visual images to cognitive maps
Zebrafish vision in its natural context: from natural scenes through retinal and central processing to behaviour.

Original classification

Investigator Award in Science

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