International audienceThe gram-negative bacterium Caulobacter crescentus is a powerful model organism for studies of bacterial cell cycle regulation. Although the major regulators and their connections in Caulobacter have been identified, it still is a challenge to properly understand the dynamics of its circuitry which accounts for both cell cycle progression and arrest. We show that the key decision module in Caulobacter is built from a limit cycle oscillator which controls the DNA replication program. The effect of an induced cell cycle arrest is demonstrated to be a key feature to classify the underlying dynamics
The assembly of the flagellum, a sophisticated nanomachine powering bacterial locomotion in liquids ...
The environmental Alphaproteobacterium Caulobacter crescentus is a classical model to study the regu...
AbstractUnderstanding of the cell cycle control logic in Caulobacter has progressed to the point whe...
International audienceThe gram-negative bacterium Caulobacter crescentus is a powerful model organis...
The life cycle of the aquatic bacterium Caulobacter crescentus includes an asymmetric cell division ...
International audienceAbstract The environmental Alphaproteobacterium Caulobacter crescentus is a cl...
Genomic and proteomic methods yield networks of biological regulatory interactions but do not provid...
The division of Caulobacter crescentus, a model organism for studying cell cycle and differentiation...
AbstractA genetic regulatory circuit recently described in the bacterium Caulobacter crescentus gene...
<div><p>The division of <i>Caulobacter crescentus</i>, a model organism for studying cell cycle and ...
Bacteria must be able to respond to a multitude of unanticipated environmental insults in order to s...
SummaryBackgroundComplex regulatory circuits in biology are often built of simpler subcircuits or mo...
Many alpha-proteobacteria divide asymmetrically, but this process was mostly described in Caulobacte...
In most organisms, cell cycle progression requires highly controlled mechanisms for regulating appro...
Caulobacter crescentus is a Gram-negative alpha-proteobacterium that divides asymmetrically genereti...
The assembly of the flagellum, a sophisticated nanomachine powering bacterial locomotion in liquids ...
The environmental Alphaproteobacterium Caulobacter crescentus is a classical model to study the regu...
AbstractUnderstanding of the cell cycle control logic in Caulobacter has progressed to the point whe...
International audienceThe gram-negative bacterium Caulobacter crescentus is a powerful model organis...
The life cycle of the aquatic bacterium Caulobacter crescentus includes an asymmetric cell division ...
International audienceAbstract The environmental Alphaproteobacterium Caulobacter crescentus is a cl...
Genomic and proteomic methods yield networks of biological regulatory interactions but do not provid...
The division of Caulobacter crescentus, a model organism for studying cell cycle and differentiation...
AbstractA genetic regulatory circuit recently described in the bacterium Caulobacter crescentus gene...
<div><p>The division of <i>Caulobacter crescentus</i>, a model organism for studying cell cycle and ...
Bacteria must be able to respond to a multitude of unanticipated environmental insults in order to s...
SummaryBackgroundComplex regulatory circuits in biology are often built of simpler subcircuits or mo...
Many alpha-proteobacteria divide asymmetrically, but this process was mostly described in Caulobacte...
In most organisms, cell cycle progression requires highly controlled mechanisms for regulating appro...
Caulobacter crescentus is a Gram-negative alpha-proteobacterium that divides asymmetrically genereti...
The assembly of the flagellum, a sophisticated nanomachine powering bacterial locomotion in liquids ...
The environmental Alphaproteobacterium Caulobacter crescentus is a classical model to study the regu...
AbstractUnderstanding of the cell cycle control logic in Caulobacter has progressed to the point whe...