Swammerdam Institute for Life Sciences, University of Amsterdam, O|2 Building, De Boelelaan 1108, 1081 HZ, Amsterdam, The Netherlands.
MicroArray Department and Integrative Bioinformatics Unit, Swammerdam Institute for Life Sciences, University of Amsterdam, Sciencepark 904, 1098 XH, Amsterdam, The Netherlands.
Sci Rep. 2017 Dec 5;7(1):16928. doi: 10.1038/s41598-017-17155-x.
The conserved cell division protein SepF aligns polymers of FtsZ, the key cell division protein in bacteria, during synthesis of the (Fts)Z-ring at midcell, the first stage in cytokinesis. In addition, SepF acts as a membrane anchor for the Z-ring. Recently, it was shown that SepF overexpression in Mycobacterium smegmatis blocks cell division. Why this is the case is not known. Surprisingly, we found in Bacillus subtilis that SepF overproduction does not interfere with Z-ring assembly, but instead blocks assembly of late division proteins responsible for septum synthesis. Transposon mutagenesis suggested that SepF overproduction suppresses the essential WalRK two-component system, which stimulates expression of ftsZ. Indeed, it emerged that SepF overproduction impairs normal WalK localization. However, transcriptome analysis showed that the WalRK activity was in fact not reduced in SepF overexpressing cells. Further experiments indicated that SepF competes with EzrA and FtsA for binding to FtsZ, and that binding of extra SepF by FtsZ alleviates the cell division defect. This may explain why activation of WalRK in the transposon mutant, which increases ftsZ expression, counteracts the division defect. In conclusion, our data shows that an imbalance in early cell division proteins can interfere with recruitment of late cell division proteins.
保守的细胞分裂蛋白 SepF 在细菌中关键的细胞分裂蛋白 FtsZ 聚合期间起作用,在细胞分裂的第一阶段即中隔形成时,FtsZ 环在细胞中部合成。此外,SepF 作为 Z 环的膜锚。最近,人们发现分枝杆菌中的 SepF 过表达会阻止细胞分裂。但不知道为什么会这样。令人惊讶的是,我们发现枯草芽孢杆菌中的 SepF 过表达不会干扰 Z 环的组装,而是阻止负责隔膜合成的晚期分裂蛋白的组装。转座子诱变表明 SepF 过表达抑制必需的 WalRK 双组分系统,该系统刺激 ftsZ 的表达。事实上,SepF 过表达会损害正常的 WalK 定位。然而,转录组分析表明,SepF 过表达细胞中的 WalRK 活性实际上并没有降低。进一步的实验表明,SepF 与 EzrA 和 FtsA 竞争与 FtsZ 的结合,并且 FtsZ 结合额外的 SepF 可减轻细胞分裂缺陷。这可能解释了为什么转座子突变体中 WalRK 的激活会增加 ftsZ 的表达,从而抵消了分裂缺陷。总之,我们的数据表明,早期细胞分裂蛋白的不平衡会干扰晚期细胞分裂蛋白的募集。