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Collective cell migration without proliferation: density determines cell velocity and wave velocity

Collective cell migration contributes to embryogenesis, wound healing and tumour metastasis. Cell monolayer migration experiments help in understanding what determines the movement of cells far from the leading edge. Inhibiting cell proliferation limits cell density increase and prevents jamming; we...

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Autores principales: Tlili, Sham, Gauquelin, Estelle, Li, Brigitte, Cardoso, Olivier, Ladoux, Benoît, Delanoë-Ayari, Hélène, Graner, François
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society Publishing 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5990758/
https://www.ncbi.nlm.nih.gov/pubmed/29892428
http://dx.doi.org/10.1098/rsos.172421
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author Tlili, Sham
Gauquelin, Estelle
Li, Brigitte
Cardoso, Olivier
Ladoux, Benoît
Delanoë-Ayari, Hélène
Graner, François
author_facet Tlili, Sham
Gauquelin, Estelle
Li, Brigitte
Cardoso, Olivier
Ladoux, Benoît
Delanoë-Ayari, Hélène
Graner, François
author_sort Tlili, Sham
collection PubMed
description Collective cell migration contributes to embryogenesis, wound healing and tumour metastasis. Cell monolayer migration experiments help in understanding what determines the movement of cells far from the leading edge. Inhibiting cell proliferation limits cell density increase and prevents jamming; we observe long-duration migration and quantify space–time characteristics of the velocity profile over large length scales and time scales. Velocity waves propagate backwards and their frequency depends only on cell density at the moving front. Both cell average velocity and wave velocity increase linearly with the cell effective radius regardless of the distance to the front. Inhibiting lamellipodia decreases cell velocity while waves either disappear or have a lower frequency. Our model combines conservation laws, monolayer mechanical properties and a phenomenological coupling between strain and polarity: advancing cells pull on their followers, which then become polarized. With reasonable values of parameters, this model agrees with several of our experimental observations. Together, our experiments and model disantangle the respective contributions of active velocity and of proliferation in monolayer migration, explain how cells maintain their polarity far from the moving front, and highlight the importance of strain–polarity coupling and density in long-range information propagation.
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spelling pubmed-59907582018-06-11 Collective cell migration without proliferation: density determines cell velocity and wave velocity Tlili, Sham Gauquelin, Estelle Li, Brigitte Cardoso, Olivier Ladoux, Benoît Delanoë-Ayari, Hélène Graner, François R Soc Open Sci Biochemistry and Biophysics Collective cell migration contributes to embryogenesis, wound healing and tumour metastasis. Cell monolayer migration experiments help in understanding what determines the movement of cells far from the leading edge. Inhibiting cell proliferation limits cell density increase and prevents jamming; we observe long-duration migration and quantify space–time characteristics of the velocity profile over large length scales and time scales. Velocity waves propagate backwards and their frequency depends only on cell density at the moving front. Both cell average velocity and wave velocity increase linearly with the cell effective radius regardless of the distance to the front. Inhibiting lamellipodia decreases cell velocity while waves either disappear or have a lower frequency. Our model combines conservation laws, monolayer mechanical properties and a phenomenological coupling between strain and polarity: advancing cells pull on their followers, which then become polarized. With reasonable values of parameters, this model agrees with several of our experimental observations. Together, our experiments and model disantangle the respective contributions of active velocity and of proliferation in monolayer migration, explain how cells maintain their polarity far from the moving front, and highlight the importance of strain–polarity coupling and density in long-range information propagation. The Royal Society Publishing 2018-05-02 /pmc/articles/PMC5990758/ /pubmed/29892428 http://dx.doi.org/10.1098/rsos.172421 Text en © 2018 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Biochemistry and Biophysics
Tlili, Sham
Gauquelin, Estelle
Li, Brigitte
Cardoso, Olivier
Ladoux, Benoît
Delanoë-Ayari, Hélène
Graner, François
Collective cell migration without proliferation: density determines cell velocity and wave velocity
title Collective cell migration without proliferation: density determines cell velocity and wave velocity
title_full Collective cell migration without proliferation: density determines cell velocity and wave velocity
title_fullStr Collective cell migration without proliferation: density determines cell velocity and wave velocity
title_full_unstemmed Collective cell migration without proliferation: density determines cell velocity and wave velocity
title_short Collective cell migration without proliferation: density determines cell velocity and wave velocity
title_sort collective cell migration without proliferation: density determines cell velocity and wave velocity
topic Biochemistry and Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5990758/
https://www.ncbi.nlm.nih.gov/pubmed/29892428
http://dx.doi.org/10.1098/rsos.172421
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