AbstractCells move by a dynamical reorganization of their cytoskeleton, orchestrated by a cascade of biochemical reactions directed to the membrane. Designed objects or bacteria can hijack this machinery to undergo actin-based propulsion inside cells or in a cell-like medium. These objects can explore the dynamical regimes of actin-based propulsion, and display different regimes of motion, in a continuous or periodic fashion. We show that bead movement can switch from one regime to the other, by changing the size of the beads or the surface concentration of the protein activating actin polymerization. We experimentally obtain the state diagram of the bead dynamics, in which the transitions between the different regimes can be understood by ...
ABSTRACT A motile cell, when stimulated, shows a dramatic increase in the activity of its membrane, ...
International audienceCells use their dynamic actin network to control their mechanics and motility....
<div><p>Two theoretical models dominate current understanding of actin-based propulsion: microscopic...
AbstractCells move by a dynamical reorganization of their cytoskeleton, orchestrated by a cascade of...
We propose a mathematical model of the actin-based propulsion of spatially extended obstacles. It st...
ABSTRACT We present the first numerical simulation of actin-driven propulsion by elastic filaments. ...
AbstractWe present the first numerical simulation of actin-driven propulsion by elastic filaments. S...
We present a simple and generic theoretical description of actin-based motility, where polymerizatio...
Propulsion by actin polymerization is widely used in cell motility. Here, we investigate a model of ...
We present a simple and generic theoretical description of actin based motility, where polymerizatio...
16 pages, 14 figures, chapter in book "Cell mechanics: from single scale-based models to multiscale ...
Propulsion by actin polymerization is widely used in cell motility. Here, we investigate a model of ...
International audienceThe directed polymerization of a branched actin network against a functionaliz...
Eukaryotic cells assemble viscoelastic networks of crosslinked actin filaments to control their shap...
ABSTRACT A motile cell, when stimulated, shows a dramatic increase in the activity of its membrane, ...
International audienceCells use their dynamic actin network to control their mechanics and motility....
<div><p>Two theoretical models dominate current understanding of actin-based propulsion: microscopic...
AbstractCells move by a dynamical reorganization of their cytoskeleton, orchestrated by a cascade of...
We propose a mathematical model of the actin-based propulsion of spatially extended obstacles. It st...
ABSTRACT We present the first numerical simulation of actin-driven propulsion by elastic filaments. ...
AbstractWe present the first numerical simulation of actin-driven propulsion by elastic filaments. S...
We present a simple and generic theoretical description of actin-based motility, where polymerizatio...
Propulsion by actin polymerization is widely used in cell motility. Here, we investigate a model of ...
We present a simple and generic theoretical description of actin based motility, where polymerizatio...
16 pages, 14 figures, chapter in book "Cell mechanics: from single scale-based models to multiscale ...
Propulsion by actin polymerization is widely used in cell motility. Here, we investigate a model of ...
International audienceThe directed polymerization of a branched actin network against a functionaliz...
Eukaryotic cells assemble viscoelastic networks of crosslinked actin filaments to control their shap...
ABSTRACT A motile cell, when stimulated, shows a dramatic increase in the activity of its membrane, ...
International audienceCells use their dynamic actin network to control their mechanics and motility....
<div><p>Two theoretical models dominate current understanding of actin-based propulsion: microscopic...