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Switch of cell migration modes orchestrated by changes of three-dimensional lamellipodium structure and intracellular diffusion

Authors :
Chao Jiang
Hong-Yu Luo
Xinpeng Xu
Shuo-Xing Dou
Wei Li
Dongshi Guan
Fangfu Ye
Xiaosong Chen
Ming Guo
Peng-Ye Wang
Hui Li
Source :
Nature Communications, Vol 14, Iss 1, Pp 1-13 (2023)
Publication Year :
2023
Publisher :
Nature Portfolio, 2023.

Abstract

Abstract Cell migration plays important roles in many biological processes, but how migrating cells orchestrate intracellular molecules and subcellular structures to regulate their speed and direction is still not clear. Here, by characterizing the intracellular diffusion and the three-dimensional lamellipodium structures of fish keratocyte cells, we observe a strong positive correlation between the intracellular diffusion and cell migration speed and, more importantly, discover a switching of cell migration modes with reversible intracellular diffusion variation and lamellipodium structure deformation. Distinct from the normal fast mode, cells migrating in the newly-found slow mode have a deformed lamellipodium with swollen-up front and thinned-down rear, reduced intracellular diffusion and compartmentalized macromolecule distribution in the lamellipodium. Furthermore, in turning cells, both lamellipodium structure and intracellular diffusion dynamics are also changed, with left-right symmetry breaking. We propose a mechanism involving the front-localized actin polymerization and increased molecular crowding in the lamellipodium to explain how cells spatiotemporally coordinate the intracellular diffusion dynamics and the lamellipodium structure in regulating their migrations.

Subjects

Subjects :
Science

Details

Language :
English
ISSN :
20411723 and 47803134
Volume :
14
Issue :
1
Database :
Directory of Open Access Journals
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
edsdoj.f75cd0760c1a47b0a47803134da555d7
Document Type :
article
Full Text :
https://doi.org/10.1038/s41467-023-40858-x