Lamellipodin tunes cell migration by stabilizing protrusions and promoting adhesion formation

Author:

Dimchev Georgi12,Amiri Behnam3,Humphries Ashley C.4,Schaks Matthias12,Dimchev Vanessa12,Stradal Theresia E. B.2,Faix Jan5,Krause Matthias6,Way Michael47,Falcke Martin38,Rottner Klemens129

Affiliation:

1. Division of Molecular Cell Biology, Zoological Institute, Technische Universität Braunschweig, Spielmannstrasse 7, 38106 Braunschweig, Germany

2. Department of Cell Biology, Helmholtz Centre for Infection Research, Inhoffen Strasse 7, 38124 Braunschweig, Germany

3. Max Delbrück Center for Molecular Medicine, Robert Rössle Strasse 10, 13125 Berlin, Germany

4. Cellular Signalling and Cytoskeletal Function Laboratory, The Francis Crick Institute, London, England, UK

5. Institute for Biophysical Chemistry, Hannover Medical School, Carl-Neuberg-Strasse 1, 30625 Hannover, Germany

6. Randall Centre of Cell & Molecular Biophysics, King's College London, New Hunt's House, Guy's Campus, London, SE1 1UL, UK

7. Department of Infectious Disease, Imperial College, London, UK

8. Department of Physics, Humboldt University, Newtonstrasse 15, 12489 Berlin, Germany

9. Braunschweig Integrated Centre of Systems Biology (BRICS), Braunschweig, D-38106, Germany

Abstract

Efficient migration on adhesive surfaces involves the protrusion of lamellipodial actin networks and their subsequent stabilization by nascent adhesions. The actin binding protein lamellipodin (Lpd) is thought to play a critical role in lamellipodium protrusion, by delivering Ena/VASP proteins onto the growing plus ends of actin filaments and by interacting with the WAVE regulatory complex (WRC), an activator of the Arp2/3 complex, at the leading edge. Using B16-F1 melanoma cell lines, we demonstrate that genetic ablation of Lpd compromises protrusion efficiency and coincident cell migration without altering essential parameters of lamellipodia, including their maximal rate of forward advancement and actin polymerization. We also confirmed lamellipodia and migration phenotypes with CRISPR/Cas9-mediated Lpd knockout Rat2 fibroblasts, excluding cell type-specific effects. Moreover, computer-aided analysis of cell edge morphodynamics on B16-F1 cell lamellipodia revealed that loss of Lpd correlates with reduced temporal protrusion maintenance as a prerequisite of nascent adhesion formation. We conclude that Lpd optimizes protrusion and nascent adhesion formation by counteracting frequent, chaotic retraction and membrane ruffling.

Funder

Deutsche Forschungsgemeinschaft

Lise Meitner Program

Cancer Research UK

Medical Research Council

Wellcome Trust

Biotechnology and Biological Sciences Research Council

Publisher

The Company of Biologists

Subject

Cell Biology

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