Completed Brain & Nervous System Psychology & Behaviour

The emergence of GABAergic microcircuits in the cortex

In plain English

AI plain-English summary

A baby’s brain rewires itself at breathtaking speed—forming and breaking millions of connections every second—yet somehow stays stable enough to learn, remember, and think. This project tackles a fundamental puzzle in neuroscience: how do developing brain circuits remain stable while constantly changing? The researchers focus on a specific class of neurons called cortical interneurons, which release the chemical GABA to dampen or modulate activity in the cortex. During development, these interneurons wire themselves into local microcircuits, but no one knows exactly when these circuits emerge, what rules govern their wiring, or how they keep the larger network from tipping into chaos. This is curiosity-driven fundamental science. There is no immediate clinical or technological application. The goal is to understand a core principle of brain development—how stability and plasticity coexist. If successful, the work will provide the first detailed description of how inhibitory circuits form and stabilise in the developing cortex. That knowledge could eventually inform treatments for neurodevelopmental disorders such as epilepsy or autism, where inhibitory circuits are thought to malfunction. But for now, the value lies in answering a question that has puzzled neuroscientists for decades: how does a constantly changing brain stay itself?

View original technical description
The wiring of neurons in the brain is a highly dynamic process, where the number and strength of synapses between neurons are in constant flux. This period of brain development neatly encapsulates a central unanswered question in the field: how do circuits remain stable in the face of unrelenting change? This is further complicated by the fact that neurons process information at multiple spatial scales, from the local integration of synaptic inputs along individual dendrites, to the summation of dendritic events at the soma and the emergence of coherent activity in local microcircuits. Therefore, mechanisms that modulate activity across these different spatial domains must be present to control the flow of information in the brain. Here, we will focus on the emergence of GABAergic microcircuits by cortical interneurons, which modulate the ongoing activity of circuits in the brain. We aim to (1) trace the emergence of these circuits during development; (2) uncover the activity rules that controls their wiring and (3) establish the functional role they play keeping cortical circuits stable. Our findings will not only provide a unique description of circuit formation and plasticity, but also shed light on the homeostatic mechanisms employed by the brain to attain stability.

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Researchers

Juan Burrone (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Control of cortex-wide neural activity maturation by local and long-range GABA signalling
Activity-Dependent Plasticity of Cortical GABAergic Interneurons Across Spatial Scales During Postnatal Development
Circuit and stage specific rules for activity in neuronal wiring
Interrogation of the role of transient interneuron circuits in the development of normal sensory activity in vivo.
Stability of neural circuit function

Original classification

Investigator Award in Science

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