Active Brain & Nervous System

Development of inhibitory circuits in the human cerebral cortex

In plain English

AI plain-English summary

The human brain’s inhibitory circuits—the networks that fine-tune neural activity—develop differently from those in other animals, but no one knows exactly how. This matters because faulty wiring of these circuits is linked to devastating conditions such as autism and schizophrenia. While scientists understand how cortical circuits form in mice and other species, the rules for human brain development remain a black box. The researchers hypothesise that humans use both universal and unique molecular codes to build their inhibitory networks. They will test this by combining single-cell RNA sequencing, transplanting human stem cells into animal brains, and growing slices of human brain tissue in the lab to watch interneurons form synapses in real time. This is fundamental science. It will not produce a treatment or diagnostic tool tomorrow. But understanding how human inhibitory circuits normally assemble is a prerequisite for figuring out what goes wrong in neurodevelopmental disorders. Similar fundamental work on synaptic development in other species has already guided therapies for epilepsy and pain. A deeper grasp of human-specific wiring could eventually point toward biological targets for conditions that currently have no cure.

View original technical description
The extraordinary diversity of animal behaviours relies on the precise assembly and fine-tuning of synapses in the brain. This connectivity reaches an exceptional level of complexity in the mammalian cerebral cortex, where the remarkable diversity of interneurons enables them to influence pyramidal cells in many ways and increase their computation power. Human behaviour remains unparalleled in scope and sophistication compared to other species. While we understand the principal rules underlying the development of cortical circuits in other species, how this complexity emerges in humans is unknown. Our central hypothesis is that human inhibitory circuitries may use universal and specific molecular codes compared to other species. This proposal aims to investigate the mechanisms through which cortical circuitries, including interneuron connectivity, develop in humans. We will use cutting-edge technology, from scRNAseq, xenotransplantation of human stem cells, and ex- vivo human slice culture, to explore how the interneurons assemble their synapses. This is highly relevant since increasing evidence suggests that impaired neuronal circuit development in the cerebral cortex constitutes the biological basis for some of the most devastating human disorders, such as autism or schizophrenia.

View the original record at the funder ↗

Researchers

Beatriz Rico (EPMC Awardee)Matthias Friedrich Kling (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Dis-inhibitory circuits in the human cerebral cortex
Integration strategies of GABAergic interneuron subtypes in the normal and dysfunctional neonatal cerebral cortex
Assembly and plasticity of inhibitory cortical networks by early learning experience
Circuit and stage specific rules for activity in neuronal wiring
Developmental principles for the functional specialisation of inhibitory circuits in neocortical areas

Original classification

Discovery Award

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.