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Polymerization of SopA partition ATPase: Regulation by DNA binding and SopB

机译:SopA分配ATPase的聚合:通过DNA结合和SopB的调控

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In bacteria, mitotic stability of plasmids and many chromosomes depends on replicon-specific systems which comprise a centromere, a centromere-binding protein and an ATPase. Dynamic self-assembly of the ATPase appears to enable active partition of replicon copies into cell-halves, but for most ATPases (the Walker-box type) the mechanism is unknown. Also unknown is how the host cell contributes to partition. We have examined the effects of non-sequence-specific DNA on in vitro self-assembly of the SopA partition ATPase of plasmid F. SopA underwent polymerization provided ATP was present. DNA inhibited this polymerization and caused breakdown of pre-formed polymers. Centromere-binding protein SopB counteracted DNA-mediated inhibition by itself binding to and masking the DNA, as well as by stimulating polymerization directly. The results suggest that in vivo, SopB smothers DNA by spreading from sopC, allowing SopA-ATP polymerization which initiates plasmid displacement. We propose that SopB and nucleoid DNA regulate SopA polymerization and hence partition.
机译:在细菌中,质粒和许多染色体的有丝分裂稳定性取决于复制子特异性系统,该系统包括着丝粒,着丝粒结合蛋白和ATPase。 ATPase的动态自组装似乎可以将复制子拷贝主动分配到细胞的一半,但是对于大多数ATPase(Walker-box型),其机制尚不清楚。还未知的是宿主细胞如何促进分区。我们已经检查了非序列特异性DNA对质粒F的SopA分配ATPase的体外自组装的影响。如果存在ATP,则对SopA进行聚合。 DNA抑制了这种聚合反应,并导致预形成的聚合物分解。着丝粒结合蛋白SopB通过自身结合和掩盖DNA以及直接刺激聚合反应来抵消DNA介导的抑制作用。结果表明,在体内,SopB通过从sopC扩散而窒息DNA,从而使SopA-ATP聚合引发质粒置换。我们建议SopB和类核苷酸DNA调节SopA聚合,因此分配。

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