arXiv · 1702.07372
Surfing on protein waves: proteophoresis as a mechanism for bacterial genome partitioning
Abstract
Efficient bacterial chromosome segregation typically requires the coordinated action of a three-components, fueled by adenosine triphosphate machinery called the partition complex. We present a phenomenological model accounting for the dynamic activity of this system. The model is obtained by coupling simple linear reaction-diffusion equations with a proteophoresis, or "volumetric" chemophoresis, force field. This minimal description, in the sense of Occam's Razor principle, captures most known experimental observations: dynamic oscillations of complex components, complex separation and subsequent symmetrical positioning. The predictions of our model are in phenomenological agreement with and provide substantial insights into recent experiments. From a non-linear physics view point, this system explores the active separation of matter at micrometric scales with a dynamical instability between static positioning and travelling wave regimes.
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Jean-Charles Walter, Jérôme Dorignac, Vladimir Lorman, Jérôme Rech, Jean-Yves Bouet, Marcelo Nollmann, John Palmeri, Andrea Parmeggiani, Frédéric Geniet. 2017-07-19. Surfing on protein waves: proteophoresis as a mechanism for bacterial genome partitioning. https://doi.org/10.1103/physrevlett.119.028101
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