AbstractActin polymerization provides a major driving force for eukaryotic cell motility. Successive intercalation of monomeric actin subunits between the plasma membrane and the filamentous actin network results in protrusions of the membrane enabling the cell to move or to change shape. One of the challenges in understanding eukaryotic cell motility is to dissect the elementary biochemical and biophysical steps that link actin polymerization to mechanical force generation. Recently, significant progress was made using biomimetic, in vitro systems that are inspired by the actin-based motility of bacterial pathogens such as Listeria monocytogenes. Polystyrene microspheres and synthetic phospholipid vesicles coated with proteins that initiat...
Force generation through actin polymerization is critical for successful infection by L. monocytogen...
Abstract In eukaryotic cells, localized actin polymeriza-tion is able to deform the plasma membrane ...
16 pages, 14 figures, chapter in book "Cell mechanics: from single scale-based models to multiscale ...
AbstractActin polymerization provides a major driving force for eukaryotic cell motility. Successive...
AbstractActin filament dynamics have been studied for decades in pure protein solutions or in cell e...
AbstractRecent studies have provided important new insights into the forces exerted by actin polymer...
International audienceThe directed polymerization of a branched actin network against a functionaliz...
Actin polymerization plays a critical role in generating propulsive force to drive many types of cel...
AbstractThe motion of many intracellular pathogens is driven by the polymerization of actin filament...
We present here a mechanics model for the force generation by actin polymerization. The possible adh...
<div><p>To understand how the actin-polymerization-mediated movements in cells emerge from myriad in...
Certain kinds of cellular movements are apparently driven by actin polymerization. Examples include ...
AbstractActin polymerization has been shown to be sufficient to propel curved objects, for example b...
Eukaryotic cells assemble viscoelastic networks of crosslinked actin filaments to control their shap...
AbstractThe bacterium Listeria monocytogenes uses the energy of the actin polymerization to propel i...
Force generation through actin polymerization is critical for successful infection by L. monocytogen...
Abstract In eukaryotic cells, localized actin polymeriza-tion is able to deform the plasma membrane ...
16 pages, 14 figures, chapter in book "Cell mechanics: from single scale-based models to multiscale ...
AbstractActin polymerization provides a major driving force for eukaryotic cell motility. Successive...
AbstractActin filament dynamics have been studied for decades in pure protein solutions or in cell e...
AbstractRecent studies have provided important new insights into the forces exerted by actin polymer...
International audienceThe directed polymerization of a branched actin network against a functionaliz...
Actin polymerization plays a critical role in generating propulsive force to drive many types of cel...
AbstractThe motion of many intracellular pathogens is driven by the polymerization of actin filament...
We present here a mechanics model for the force generation by actin polymerization. The possible adh...
<div><p>To understand how the actin-polymerization-mediated movements in cells emerge from myriad in...
Certain kinds of cellular movements are apparently driven by actin polymerization. Examples include ...
AbstractActin polymerization has been shown to be sufficient to propel curved objects, for example b...
Eukaryotic cells assemble viscoelastic networks of crosslinked actin filaments to control their shap...
AbstractThe bacterium Listeria monocytogenes uses the energy of the actin polymerization to propel i...
Force generation through actin polymerization is critical for successful infection by L. monocytogen...
Abstract In eukaryotic cells, localized actin polymeriza-tion is able to deform the plasma membrane ...
16 pages, 14 figures, chapter in book "Cell mechanics: from single scale-based models to multiscale ...