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Can a Flux-Based Mechanism Explain Protein Cluster Positioning in a Three-Dimensional Cell Geometry?

机译:基于助焊剂的机制可以解释蛋白质聚类在三维细胞几何形状中定位?

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摘要

The plane of bacterial cell division must be precisely positioned. In the bacterium Myxococcus xanthus, the proteins PomX and PomY form a large cluster, which is tethered to the nucleoid by the ATPase PomZ and moves in a stochastic but biased manner toward midcell where it initiates cell division. Previously, a positioning mechanism based on the fluxes of PomZ on the nucleoid was proposed. However, the cluster dynamics was analyzed in a reduced, one-dimensional geometry. Here, we introduce a mathematical model that accounts for the three-dimensional shape of the nucleoid, such that nucleoid-bound PomZ dimers can diffuse past the cluster without interacting with it. Using stochastic simulations, we find that the cluster still moves to and localizes at midcell. Redistribution of PomZ by diffusion in the cytosol is essential for this cluster dynamics. Our mechanism also positions two clusters equidistantly on the nucleoid, as observed for low-copy-number plasmid partitioning. We conclude that a flux-based mechanism allows for cluster positioning in a biologically realistic three-dimensional cell geometry.
机译:必须精确定位细菌细胞分裂平面。在细菌麦克松Xanthus中,蛋白质POMX和猪形成大簇,其由ATP酶POMZ拴在核心上,并以随机但偏见的方式朝向中间壳移动,在那里它引发细胞分裂。以前,提出了一种基于核圆形散液的定位机构。但是,在减少的一维几何形状中分析群集动态。在这里,我们介绍了一个数学模型,其考虑了核核的三维形状,使得核心结合的POMZ二聚体可以在不与其相互作用而不与其相互作用的情况下扩散过簇。使用随机模拟,我们发现集群仍然在Midcell移动并定位。通过细胞溶溶胶中的扩散重新分布孔隙是对该群集动态的必不可少的。我们的机制还将两种簇位于核,如对于低拷贝数质粒分配所观察到。我们得出结论,基于助焊剂的机制允许在生物逼真的三维细胞几何形状中进行聚类定位。

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