Cell intercalation is a key topological transformation driving tissue morphogenesis, homeostasis and diseases such as cancer cell invasion. In recent years, much work has been undertaken to better elucidate the fundamental mechanisms controlling intercalation. Cells often use protrusions to propel themselves in between cell neighbours,...
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October 12, 2020 (v1)Journal articleUploaded on: December 4, 2022
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October 12, 2020 (v1)Journal article
Cell intercalation is a key topological transformation driving tissue morphogenesis, homeostasis and diseases such as cancer cell invasion. In recent years, much work has been undertaken to better elucidate the fundamental mechanisms controlling intercalation. Cells often use protrusions to propel themselves in between cell neighbours,...
Uploaded on: February 22, 2023 -
October 12, 2020 (v1)Journal article
Cell intercalation is a key topological transformation driving tissue morphogenesis, homeostasis and diseases such as cancer cell invasion. In recent years, much work has been undertaken to better elucidate the fundamental mechanisms controlling intercalation. Cells often use protrusions to propel themselves in between cell neighbours,...
Uploaded on: December 4, 2022 -
June 2021 (v1)Book section
International audience
Uploaded on: December 4, 2022 -
May 2021 (v1)Journal article
International audience
Uploaded on: December 4, 2022 -
March 2, 2021 (v1)Journal article
Tissue elongation is known to be controlled by oriented cell division, elongation, migration and rearrangement. While these cellular processes have been extensively studied, new emerging supracellular mechanisms driving tissue extension have recently been unveiled. Tissue rotation and actomyosin contractions have been shown to be key processes...
Uploaded on: December 4, 2022 -
2008 (v1)Journal article
Epithelial tissues maintain a robust architecture which is important for their barrier function, but they are also remodelled through the reorganization of cell-cell contacts. Tissue stability requires intercellular adhesion mediated by E-cadherin, in particular its trans-association in homophilic complexes supported by actin filaments through...
Uploaded on: January 13, 2025 -
February 2024 (v1)Journal article
Abstract Cell apical constriction driven by actomyosin contraction forces is a conserved mechanism during tissue folding in embryo development. While much is now understood of the molecular mechanism responsible for apical constriction and of the tissue-scale integration of the ensuing in-plane deformations, it is still not clear if apical...
Uploaded on: October 17, 2024 -
December 2015 (v1)Journal article
International audience
Uploaded on: December 4, 2022 -
April 21, 2020 (v1)Journal article
Actomyosin supracellular networks emerge during development and tissue repair. These cytoskeletal structures are able to generate large scale forces that can extensively remodel epithelia driving tissue buckling, closure and extension. How supracellular networks emerge, are controlled and mechanically work still remain elusive. During...
Uploaded on: December 4, 2022 -
December 2022 (v1)Journal article
Cell apical constriction driven by actomyosin contraction forces is a conserved mechanism during tissue folding in embryo development. While much is now understood of the molecular mechanism responsible for apical constriction and of the tissue-scale integration of the ensuing in-plane deformations, it is still not clear if apical actomyosin...
Uploaded on: December 3, 2022 -
February 6, 2020 (v1)Journal article
Three-dimensional live imaging has become an indispensable technique in the fields of cell, developmental and neural biology. Precise spatio-temporal manipulation of biological entities is often required for a deeper functional understanding of the underlying biological process. Here we present a home-built integrated framework and optical...
Uploaded on: December 4, 2022