International audienceBiological tissues are composed of various cell types working cooperatively to perform their respective function within organs and the whole body. During development, embryogenesis followed by histogenesis relies on orchestrated division, death, differentiation and collective movements of cellular constituents. These cells are anchored to each other and/or the underlying substrate through adhesion complexes and they regulate force generation by active cytoskeleton remodelling. The resulting contractility related changes at the level of each single cell impact tissue architecture by triggering changes in cell shape, cell movement and remodelling of the surrounding environment. These out of equilibrium processes occur th...
Des cellules allongées et apolaires cultivées à confluence s'alignent les unes avec les autres. Dans...
Active matter is a growing interdisciplinary field of science that studies the collective motion of ...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
International audienceBiological tissues are composed of various cell types working cooperatively to...
The collective behavior of cells in tissues is a key aspect in fundamental biological processes such...
Active matter extracts energy from its surroundings at the single particle level and transforms it i...
Active matter is based on understanding the physical mechanisms that give rise to large scale flows ...
Animal tissue and organ development requires the orchestration of cell movements, including those of...
There is now growing evidence of the emergence and biological functionality of liquid crystal featur...
Soft active tissues exhibit softening, hardening, and reversible fluidisation. The result of these n...
Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body...
Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body...
Active nematics are the nonequilibrium analog of passive liquid crystals in which anisotropic units ...
After decades of experimental investigation, the dynamics howindividual cellsmove or deform-perfectl...
We introduce the notion of cell division-induced activity and show that the cell division generates ...
Des cellules allongées et apolaires cultivées à confluence s'alignent les unes avec les autres. Dans...
Active matter is a growing interdisciplinary field of science that studies the collective motion of ...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
International audienceBiological tissues are composed of various cell types working cooperatively to...
The collective behavior of cells in tissues is a key aspect in fundamental biological processes such...
Active matter extracts energy from its surroundings at the single particle level and transforms it i...
Active matter is based on understanding the physical mechanisms that give rise to large scale flows ...
Animal tissue and organ development requires the orchestration of cell movements, including those of...
There is now growing evidence of the emergence and biological functionality of liquid crystal featur...
Soft active tissues exhibit softening, hardening, and reversible fluidisation. The result of these n...
Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body...
Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body...
Active nematics are the nonequilibrium analog of passive liquid crystals in which anisotropic units ...
After decades of experimental investigation, the dynamics howindividual cellsmove or deform-perfectl...
We introduce the notion of cell division-induced activity and show that the cell division generates ...
Des cellules allongées et apolaires cultivées à confluence s'alignent les unes avec les autres. Dans...
Active matter is a growing interdisciplinary field of science that studies the collective motion of ...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...