<div><p>We observe and quantify wave-like characteristics of amoeboid migration. Using the amoeba <em>Dictyostelium discoideum</em>, a model system for the study of chemotaxis, we demonstrate that cell shape changes in a wave-like manner. Cells have regions of high boundary curvature that propagate from the leading edge toward the back, usually along alternating sides of the cell. Curvature waves are easily seen in cells that do not adhere to a surface, such as cells that are electrostatically repelled from surfaces or cells that extend over the edge of micro-fabricated cliffs. Without surface contact, curvature waves travel from the leading edge to the back of a cell at ∼35 µm/min. Non-adherent myosin II null cells do not exhibit these cur...
International audienceLatest experiments have shown that adherent cells can migrate according to cel...
Cell migration processes are controlled by sensitive interaction with external cues such as topograp...
AbstractFast amoeboid migration requires cells to apply mechanical forces on their surroundings via ...
I present an analysis of the shape dynamics of the amoeba Dictyostelium discoideum, a model system f...
I present an analysis of the shape dynamics of the amoeba Dictyostelium discoideum, a model system f...
International audienceIn-vitro experiments have shown that cell scale curvatures influence cell migr...
Motile cells have developed a variety of migration modes relying on diverse traction-force-generatio...
Amoeboid cells crawl using pseudopods, which are convex extensions of the cell surface. In many labo...
We investigate the effects of surface nanotopography on the migration and cell shape dynamics of the...
The behaviour of an organism often reflects a strategy for coping with its environment. Such behavio...
Many eukaryotic cells are able to crawl on surfaces and guide their motility based on environmental ...
<div><p>The surface behaviour of swimming amoebae was followed in cells bearing a cAR1-paGFP (cyclic...
On flat substrates, several cell types exhibit amoeboid migration, which is characterized by restles...
The current dominant model of cell locomotion proposes that actin polymerization pushes against the ...
Migration of amoeboid cells is characterized by the formation of pseudopods, or extensions of the ce...
International audienceLatest experiments have shown that adherent cells can migrate according to cel...
Cell migration processes are controlled by sensitive interaction with external cues such as topograp...
AbstractFast amoeboid migration requires cells to apply mechanical forces on their surroundings via ...
I present an analysis of the shape dynamics of the amoeba Dictyostelium discoideum, a model system f...
I present an analysis of the shape dynamics of the amoeba Dictyostelium discoideum, a model system f...
International audienceIn-vitro experiments have shown that cell scale curvatures influence cell migr...
Motile cells have developed a variety of migration modes relying on diverse traction-force-generatio...
Amoeboid cells crawl using pseudopods, which are convex extensions of the cell surface. In many labo...
We investigate the effects of surface nanotopography on the migration and cell shape dynamics of the...
The behaviour of an organism often reflects a strategy for coping with its environment. Such behavio...
Many eukaryotic cells are able to crawl on surfaces and guide their motility based on environmental ...
<div><p>The surface behaviour of swimming amoebae was followed in cells bearing a cAR1-paGFP (cyclic...
On flat substrates, several cell types exhibit amoeboid migration, which is characterized by restles...
The current dominant model of cell locomotion proposes that actin polymerization pushes against the ...
Migration of amoeboid cells is characterized by the formation of pseudopods, or extensions of the ce...
International audienceLatest experiments have shown that adherent cells can migrate according to cel...
Cell migration processes are controlled by sensitive interaction with external cues such as topograp...
AbstractFast amoeboid migration requires cells to apply mechanical forces on their surroundings via ...