Abstract Spontaneous locomotion is a common feature of most metazoan cells, generally attributed to the fundamental properties of the actomyosin network. This force-producing machinery has been studied down to the most minute molecular details, especially in lamellipodium-driven migration. Nevertheless, how actomyosin networks work inside contraction-driven amoeboid cells still lacks unifying principles. Here, using stable motile blebs as a model amoeboid motile system, we image the dynamics of the actin cortex at the single filament level and reveal the co-existence of three phases of the actin network with distinct rheological properties. Physical modelling shows that these three phases organize spontaneously due to a rigidity percolation...
The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despi...
Summary3D amoeboid cell migration is central to many developmental and disease-related processes suc...
AbstractBackground: In the cortical region of motile cells, the actin network rapidly reorganizes as...
In crawling cells, the polymerisation of actin into a filamentaus network generates lamellar protru...
AbstractFast amoeboid migration requires cells to apply mechanical forces on their surroundings via ...
The current dominant model of cell locomotion proposes that actin polymerization pushes against the ...
Living systems provide a paradigmatic example of active soft matter. Cells and tissues comprise visc...
Amoeboid locomotion is one of the typical modes of biological cell migration. Cytoplasmic sol–gel co...
<div><p>Amoeboid locomotion is one of the typical modes of biological cell migration. Cytoplasmic so...
Dissection of amoeboid movement into two mechanically distinct modes YOSHIDA, Kunito, SOLDATI, Thier...
Cells employing amoeboid motility exhibit repetitive cycles of rapid expansion and contraction and a...
Cell motility is crucial to biological functions ranging from wound healing to immune response. The ...
The morphological term 'amoeboid' migration subsumes a number of rather distinct biophysical modes o...
The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despi...
Amoeboid cell migration is characterized by frequent changes of the direction of motion and resemble...
The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despi...
Summary3D amoeboid cell migration is central to many developmental and disease-related processes suc...
AbstractBackground: In the cortical region of motile cells, the actin network rapidly reorganizes as...
In crawling cells, the polymerisation of actin into a filamentaus network generates lamellar protru...
AbstractFast amoeboid migration requires cells to apply mechanical forces on their surroundings via ...
The current dominant model of cell locomotion proposes that actin polymerization pushes against the ...
Living systems provide a paradigmatic example of active soft matter. Cells and tissues comprise visc...
Amoeboid locomotion is one of the typical modes of biological cell migration. Cytoplasmic sol–gel co...
<div><p>Amoeboid locomotion is one of the typical modes of biological cell migration. Cytoplasmic so...
Dissection of amoeboid movement into two mechanically distinct modes YOSHIDA, Kunito, SOLDATI, Thier...
Cells employing amoeboid motility exhibit repetitive cycles of rapid expansion and contraction and a...
Cell motility is crucial to biological functions ranging from wound healing to immune response. The ...
The morphological term 'amoeboid' migration subsumes a number of rather distinct biophysical modes o...
The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despi...
Amoeboid cell migration is characterized by frequent changes of the direction of motion and resemble...
The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despi...
Summary3D amoeboid cell migration is central to many developmental and disease-related processes suc...
AbstractBackground: In the cortical region of motile cells, the actin network rapidly reorganizes as...