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Updated: May 13, 2026

Measuring Cell-Edge Protrusion Dynamics during Spreading using Live-Cell Microscopy
Published on: November 1, 2021
Nck enables directional cell migration through the coordination of polarized membrane protrusion with adhesion
Sankar P Chaki1, Rola Barhoumi, Matthew E Berginski
1Department of Veterinary Pathobiology, Texas A&M University, College Station, TX 77843-4467, USA.
Abstract:
Directional migration requires the coordination of cytoskeletal changes essential for cell polarization and adhesion turnover. Extracellular signals that alter tyrosine phosphorylation drive directional migration by inducing reorganization of the actin cytoskeleton. It is recognized that Nck is an important link between tyrosine phosphorylation and actin dynamics; however, the role of Nck in cytoskeletal remodeling during directional migration and the underlying molecular mechanisms remain largely undetermined. In this study, a combination of molecular genetics and quantitative live cell microscopy was used to show that Nck is essential in the establishment of front-back polarity and directional migration of endothelial cells. Time-lapse differential interference contrast and total internal reflection fluorescence microscopy showed that Nck couples the formation of polarized membrane protrusions with their stabilization through the assembly and maturation of cell-substratum adhesions. Measurements by atomic force microscopy showed that Nck also modulates integrin α5β1-fibronectin adhesion force and cell stiffness. Fluorescence resonance energy transfer imaging revealed that Nck depletion results in delocalized and increased activity of Cdc42 and Rac. By contrast, the activity of RhoA and myosin II phosphorylation were reduced by Nck knockdown. Thus, this study identifies Nck as a key coordinator of cytoskeletal changes that enable cell polarization and directional migration, which are crucial processes in development and disease.
Insights
Nck protein is crucial for endothelial cell directional migration by coordinating cell polarization and adhesion. This study reveals Nck
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Directional cell migration relies on cytoskeletal dynamics and cell adhesion.
- Nck protein is implicated in linking tyrosine phosphorylation to actin dynamics, but its precise role in migration is unclear.
Purpose of the Study:
- To investigate the role of Nck in endothelial cell polarization and directional migration.
- To elucidate the molecular mechanisms by which Nck influences cytoskeletal remodeling during migration.
Main Methods:
- Molecular genetics and quantitative live cell microscopy (time-lapse DIC, TIRF).
- Atomic force microscopy (AFM) for adhesion force and cell stiffness measurements.
- Förster resonance energy transfer (FRET) imaging for Rho GTPase activity.
Main Results:
- Nck is essential for establishing front-back polarity and directional migration in endothelial cells.
- Nck connects polarized membrane protrusion formation with adhesion maturation and modulates integrin-fibronectin adhesion forces.
- Nck depletion alters the activity of key regulators of the actin cytoskeleton, including Cdc42, Rac, and RhoA.
Conclusions:
- Nck acts as a critical coordinator of cytoskeletal rearrangements necessary for cell polarization and directional migration.
- Understanding Nck's function provides insights into fundamental processes in development and disease.
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