A minimal physical model for curvotaxis driven by curved protein complexes at the cell’s leading edge

Author:

Sadhu Raj Kumar1ORCID,Luciano Marine23ORCID,Xi Wang4ORCID,Martinez-Torres Cristina5,Schröder Marcel6,Blum Christoph6ORCID,Tarantola Marco6,Villa Stefano6ORCID,Penič Samo7,Iglič Aleš7ORCID,Beta Carsten58ORCID,Steinbock Oliver9ORCID,Bodenschatz Eberhard6ORCID,Ladoux Benoît4ORCID,Gabriele Sylvain3ORCID,Gov Nir S.1ORCID

Affiliation:

1. Department of Chemical and Biological Physics, Weizmann Institute of Science, Rehovot 7610001, Israel

2. Department of Biochemistry, University of Geneva, Geneva 4 CH-1211, Switzerland

3. Mechanobiology & Biomaterials Group, Research Institute for Biosciences, Center of Innovation and Research in Materials and Polymers, University of Mons, Mons B-7000, Belgium

4. Universite Paris Cite, CNRS, Institut Jacques Monod, Paris F-75013, France

5. Institute of Physics and Astronomy, University of Potsdam, Potsdam 14476, Germany

6. Department of Fluid Physics, Pattern Formation and Biocomplexity, Max Planck Institute for Dynamics and Self-Organization, Göttingen 37077, Germany

7. Laboratory of Physics, Faculty of Electrical Engineering, University of Ljubljana, Ljubljana 1000, Slovenia

8. Nano Life Science Institute, Kanazawa University, Kanazawa 920-1192, Japan

9. Department of Chemistry and Biochemistry, Florida State University, Tallahassee, FL 32306-4390

Abstract

Cells often migrate on curved surfaces inside the body, such as curved tissues, blood vessels, or highly curved protrusions of other cells. Recent in vitro experiments provide clear evidence that motile cells are affected by the curvature of the substrate on which they migrate, preferring certain curvatures to others, termed “curvotaxis.” The origin and underlying mechanism that gives rise to this curvature sensitivity are not well understood. Here, we employ a “minimal cell” model which is composed of a vesicle that contains curved membrane protein complexes, that exert protrusive forces on the membrane (representing the pressure due to actin polymerization). This minimal-cell model gives rise to spontaneous emergence of a motile phenotype, driven by a lamellipodia-like leading edge. By systematically screening the behavior of this model on different types of curved substrates (sinusoidal, cylinder, and tube), we show that minimal ingredients and energy terms capture the experimental data. The model recovers the observed migration on the sinusoidal substrate, where cells move along the grooves (minima), while avoiding motion along the ridges. In addition, the model predicts the tendency of cells to migrate circumferentially on convex substrates and axially on concave ones. Both of these predictions are verified experimentally, on several cell types. Altogether, our results identify the minimization of membrane-substrate adhesion energy and binding energy between the membrane protein complexes as key players of curvotaxis in cell migration.

Funder

Agence Nationale de la Recherche

Israel Research Foundation

Slovenian Research Agency

Marie Curie Individual Fellowship

Initiatives d'exellence

EC | European Research Council

Deutsche Forschungsgemeinschaft

FEDER prostem research

FRS-FNRS Epiforce

FRS-FNRS cellsqueezer

FRS-FNRS optopattern

Publisher

Proceedings of the National Academy of Sciences

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