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首页> 外文期刊>MBio >The Min System Disassembles FtsZ Foci and Inhibits Polar Peptidoglycan Remodeling in Bacillus subtilis
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The Min System Disassembles FtsZ Foci and Inhibits Polar Peptidoglycan Remodeling in Bacillus subtilis

机译:Min系统拆卸FTSZ焦点并抑制<命名含量含量型=“属型”> Bacillus subtilis 中的极性肽聚糖重塑

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摘要

A microfluidic system coupled with fluorescence microscopy is a powerful approach for quantitative analysis of bacterial growth. Here, we measure parameters of growth and dynamic localization of the cell division initiation protein FtsZ in Bacillus subtilis . Consistent with previous reports, we found that after division, FtsZ rings remain at the cell poles, and polar FtsZ ring disassembly coincides with rapid Z-ring accumulation at the midcell. In cells mutated for minD , however, the polar FtsZ rings persist indefinitely, suggesting that the primary function of the Min system is in Z-ring disassembly. The inability to recycle FtsZ monomers in the minD mutant results in the simultaneous maintenance of multiple Z-rings that are restricted by competition for newly synthesized FtsZ. Although the parameters of FtsZ dynamics change in the minD mutant, the overall cell division time remains the same, albeit with elongated cells necessary to accumulate a critical threshold amount of FtsZ for promoting medial division. Finally, the minD mutant characteristically produces minicells composed of polar peptidoglycan shown to be inert for remodeling in the wild type. Polar peptidoglycan, however, loses its inert character in the minD mutant, suggesting that the Min system not only is important for recycling FtsZ but also may have a secondary role in the spatiotemporal regulation of peptidoglycan remodeling.
机译:耦合荧光显微镜的微流体系统是用于定量分析细菌生长的强大方法。在此,我们测量枯草芽孢杆菌细胞分裂发起蛋白FTSZ的生长和动态定位参数。与以前的报告一致,我们发现在分开后,FTSZ环保留在细胞杆处,极性FTSZ环拆卸在中间壳上的快速Z环积累。然而,在突变心中的细胞中,极性FTSZ环无限期地持续,表明MIN系统的主要功能是Z环拆卸。无法回收心灵突变体中的FTSZ单体导致同时维持多种Z环的Z环,这些Z环通过对新合成的FTSZ竞争限制。虽然心灵突变体的FTSZ动力学的参数变化,但整个细胞分割时间保持不变,尽管具有所需的细长细胞,以积累促进内侧划分的临界阈值量的FTSZ。最后,思维突变体特征性地产生由极性肽聚糖组成的迷你蛋白,其显示在野生型中被用于重塑的惰性。然而,极性肽聚糖在心灵突变体中失去了其惰性性质,表明Min系统对再循环FTSZ非常重要,但也可能具有在肽聚糖重组的时空调节中具有次要作用。

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