Cortex folding by combined progenitor expansion and adhesion-controlled neuronal migration

S Seung Hee Chun D Da Eun Yoon D D. Santiago Diaz Almeida M Mihail Ivilinov Todorov T Tobias Straub (Core Facility Bioinformatics, Biomedical Center, Faculty of Medicine, LMU) T Tobias Ruff W Wei Shao J Jianjun Yang G Gönül Seyit-Bremer Y Yi-Ru Shen A Ali Ertürk D Daniel del Toro S Songhai Shi R Rüdiger Klein

Abstract

Abstract Folding of the mammalian cerebral cortex into sulcal fissures and gyral peaks is the result of complex processes that are incompletely understood. Previously we showed that genetic deletion of Flrt1/3 adhesion molecules causes folding of the smooth mouse cortex into sulci resulting from increased lateral dispersion and faster neuron migration, without progenitor expansion. Here, we show in mice that combining the Flrt1/3 double knockout with an additional genetic deletion that causes progenitor expansion, greatly enhances cortex folding. Expansion of intermediate progenitors by deletion of Cep83 leads to a relative increase in Flrt-mutant neurons resulting in enhanced formation of sulci. Expansion of apical progenitors by deletion of Fgf10 leads to a relative reduction in Flrt-mutant neurons resulting in enhanced formation of gyri. These results together with computational modeling identify key developmental mechanisms, such as adhesive properties, cell densities and migration of cortical neurons, that cooperate to promote cortical gyrification.

Article Details

Volume / Issue Vol. 16, Issue 1
Published August 28, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (14)

S

Seung Hee Chun

D

Da Eun Yoon

D

D. Santiago Diaz Almeida

M

Mihail Ivilinov Todorov

T

Tobias Straub

Core Facility Bioinformatics, Biomedical Center, Faculty of Medicine, LMU

T

Tobias Ruff

W

Wei Shao

J

Jianjun Yang

G

Gönül Seyit-Bremer

Y

Yi-Ru Shen

A

Ali Ertürk

D

Daniel del Toro

S

Songhai Shi

R

Rüdiger Klein