International audienceFormation of spatial patterns of cells is a recurring theme in biology and often depends on regulated cell motility. Motility of the rod-shaped cells of the bacterium Myxococcus xanthus depends on two motility machineries, type IV pili (giving rise to S-motility) and the gliding motility apparatus (giving rise to A-motility). Cell motility is regulated by occasional reversals. Moving M. xanthus cells can organize into spreading colonies or spore-filled fruiting bodies, depending on their nutritional status. To ultimately understand these two pattern-formation processes and the contributions by the two motility machineries, as well as the cell reversal machinery, we analyse spatial self-organization in three M. xanthus ...
In Myxococcus xanthus morphogenetic cell movements constitute the basis for the formation of spreadi...
Identifying essential factors in cellular interactions and organized movement of cells is important ...
Coordinated cell movement and intercellular interactions are crucial for bacterial multicellularity ...
International audienceFormation of spatial patterns of cells is a recurring theme in biology and oft...
Myxobacteria exhibit a complex life cycle characterized by a sequence of cell patterns that culminat...
Formation of spatial patterns of cells from a mass of initially identical cells is a recurring theme...
The formation of a collectively moving group benefits individuals within a population in a variety o...
<div><p><i>Myxococcus xanthus</i> cells self-organize into aligned groups, clusters, at various stag...
<div><p>Myxobacteria are social bacteria that upon starvation form multicellular fruiting bodies who...
The soil bacterium Myxococcus xanthus is a model organism with a set of diverse behaviors. These be...
In response to starvation, an unstructured population of identical Myxococcus xanthus cells rearrang...
Myxococcus xanthusᅠcells self-organize into aligned groups, clusters, at various stages of their lif...
A major challenge in microbial evolutionary ecology is to understand how fitness-related traits vary...
From colony formation in bacteria to wound healing and embryonic development in multicellular organi...
Surface translocation by the soil bacterium Myxococcus xanthus is a complex multicellular phenomenon...
In Myxococcus xanthus morphogenetic cell movements constitute the basis for the formation of spreadi...
Identifying essential factors in cellular interactions and organized movement of cells is important ...
Coordinated cell movement and intercellular interactions are crucial for bacterial multicellularity ...
International audienceFormation of spatial patterns of cells is a recurring theme in biology and oft...
Myxobacteria exhibit a complex life cycle characterized by a sequence of cell patterns that culminat...
Formation of spatial patterns of cells from a mass of initially identical cells is a recurring theme...
The formation of a collectively moving group benefits individuals within a population in a variety o...
<div><p><i>Myxococcus xanthus</i> cells self-organize into aligned groups, clusters, at various stag...
<div><p>Myxobacteria are social bacteria that upon starvation form multicellular fruiting bodies who...
The soil bacterium Myxococcus xanthus is a model organism with a set of diverse behaviors. These be...
In response to starvation, an unstructured population of identical Myxococcus xanthus cells rearrang...
Myxococcus xanthusᅠcells self-organize into aligned groups, clusters, at various stages of their lif...
A major challenge in microbial evolutionary ecology is to understand how fitness-related traits vary...
From colony formation in bacteria to wound healing and embryonic development in multicellular organi...
Surface translocation by the soil bacterium Myxococcus xanthus is a complex multicellular phenomenon...
In Myxococcus xanthus morphogenetic cell movements constitute the basis for the formation of spreadi...
Identifying essential factors in cellular interactions and organized movement of cells is important ...
Coordinated cell movement and intercellular interactions are crucial for bacterial multicellularity ...