Active Brain & Nervous System

Reprogramming behaviour: Flexible assembly of object identification circuits

In plain English

AI plain-English summary

A tadpole that filters food from water becomes a frog that hunts moving prey—and the same eyes and brain must rewire to support this complete behavioural overhaul. This project addresses a fundamental puzzle in neuroscience: how can the same basic neural building blocks produce radically different behaviours across development and evolution? In most animals, the retinal cells and brain regions that process visual information are highly conserved, yet the behaviours they drive—feeding, fleeing, hunting—vary enormously. The metamorphosis of *Xenopus laevis* offers a natural experiment: the same animal, the same eyes, but a completely different behavioural programme. This is fundamental science. There is no immediate practical application. But understanding how neural circuits are flexibly assembled could, in the long term, illuminate principles that apply to other systems where conserved components produce diverse outputs—for example, how the human brain adapts during development, or how neural prosthetics might be designed to integrate with existing circuits. Past work on circuit flexibility in simpler organisms has informed everything from artificial neural networks to treatments for developmental disorders. This project asks how evolution solves the problem of behavioural diversity, and the answer may reshape how we think about brain wiring itself.

View original technical description
Identical visual stimuli elicit different responses across animals, depending on the species or life stage. However, the visual circuits that enable early object interpretation, such as retinal cell types and their target brain nuclei, tend to be conserved. How, then, can these basic building blocks of brains be flexibly combined to achieve variability of innate behaviours? Using the metamorphosis of Xenopus laevis, where filter-feeding tadpoles transform into predatory frogs, I aim to identify how neural circuits are flexible assembled to generate diverse behaviours. I will ask: 1\. How does stimulus representation in the brain change during natural behavioural reprogramming? 2\. Which wiring changes underlie these functional shifts? 3\. Can they be used to reprogram behaviour? I hypothesize that behavioural reprogramming relies on evolutionarily conserved retinal circuits that flexibly change their connectivity patterns in the brain during metamorphosis to enable the behavioural switch from prey to predator. I will test this hypothesis using 2photon eye and brain imaging in tadpoles and frogs, neuronal tract tracing, transcriptome-based cell type identification, and transgenic tools for circuit manipulation. This project aims to uncover how building blocks of the brain can be flexibly assembled, to achieve the behavioural diversity we see across development and evolution.

View the original record at the funder ↗

Researchers

Michael Forsthofer (EPMC Awardee)

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Original classification

Early-Career Award

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