Datta Pratik, Dasgupta Arunava, Singh Anil Kumar, Mukherjee Partha, Kundu Manikuntala, Basu Joyoti
Department of Chemistry, Bose Institute, 93/1 Acharya Prafulla Chandra Road, Kolkata 700009, India.
Mol Microbiol. 2006 Dec;62(6):1655-73. doi: 10.1111/j.1365-2958.2006.05491.x.
In bacteria, biogenesis of cell wall at the division site requires penicillin-binding protein 3 (PBP3) (or Ftsl). Using pull-down, bacterial two-hybrid, and peptide-based interaction assays, we provide evidence that FtsW of Mycobacterium tuberculosis (FtsWMTB) interacts with PBP3 through two extracytoplasmic loops. Pro306 in the larger loop and Pro386 in the smaller loop of FtsW are crucial for these interactions. Fluorescence microscopy shows that conditional silencing of ftsW in Mycobacterium smegmatis prevents cell septation and positioning of PBP3 at mid-cell. Pull-down assays and conditional depletion of FtsW in M. smegmatis provide evidence that FtsZ, FtsW and PBP3 of mycobacteria are capable of forming a ternary complex, with FtsW acting as a bridging molecule. Bacterial three-hybrid analysis suggests that in M. tuberculosis, the interaction (unique to mycobacteria) of FtsZ with the cytosolic C-tail of FtsW strengthens the interaction of FtsW with PBP3. ftsW of M. smegmatis could be replaced by ftsW of M. tuberculosis. FtsWMTB could support formation of the FtsZ-FtsW-PBP3 ternary complex in M. smegmatis. Our findings raise the possibility that in the genus Mycobacterium binding of FtsZ to the C-tail of FtsW may modulate its interactions with PBP3, thereby potentially regulating septal peptidoglycan biogenesis.
在细菌中,分裂位点处细胞壁的生物合成需要青霉素结合蛋白3(PBP3)(或Ftsl)。通过下拉实验、细菌双杂交实验和基于肽的相互作用实验,我们提供了证据表明结核分枝杆菌的FtsW(FtsWMTB)通过两个胞外环与PBP3相互作用。FtsW较大环中的Pro306和较小环中的Pro386对于这些相互作用至关重要。荧光显微镜显示耻垢分枝杆菌中ftsW的条件性沉默会阻止细胞分隔以及PBP3在细胞中部的定位。耻垢分枝杆菌中的下拉实验和FtsW的条件性缺失提供了证据表明分枝杆菌的FtsZ、FtsW和PBP3能够形成三元复合物,其中FtsW充当桥接分子。细菌三杂交分析表明,在结核分枝杆菌中,FtsZ与FtsW胞质C末端的相互作用(分枝杆菌特有的)增强了FtsW与PBP3的相互作用。耻垢分枝杆菌的ftsW可以被结核分枝杆菌的ftsW替代。FtsWMTB可以支持耻垢分枝杆菌中FtsZ - FtsW - PBP3三元复合物的形成。我们的发现增加了一种可能性,即在分枝杆菌属中,FtsZ与FtsW C末端的结合可能会调节其与PBP3的相互作用,从而潜在地调节隔膜肽聚糖的生物合成。