Institut Pasteur, Group Biology and Genetics of the Bacterial Cell Wall, F-75015 Paris, France.
Mol Microbiol. 2011 Oct;82(1):68-86. doi: 10.1111/j.1365-2958.2011.07791.x. Epub 2011 Sep 15.
The definition of bacterial cell shape is a complex process requiring the participation of multiple components of an intricate macromolecular machinery. We aimed at characterizing the determinants involved in cell shape of the helical bacterium Helicobacter pylori. Using a yeast two-hybrid screen with the key cell elongation protein PBP2 as bait, we identified an interaction between PBP2 and MreC. The minimal region of MreC required for this interaction ranges from amino acids 116 to 226. Using recombinant proteins, we showed by affinity and size exclusion chromatographies and surface plasmon resonance that PBP2 and MreC form a stable complex. In vivo, the two proteins display a similar spatial localization and their complex has an apparent 1:1 stoichiometry; these results were confirmed in vitro by analytical ultracentrifugation and chemical cross-linking. Small angle X-ray scattering analyses of the PBP2 : MreC complex suggest that MreC interacts directly with the C-terminal region of PBP2. Depletion of either PBP2 or MreC leads to transition into spherical cells that lose viability. Finally, the specific expression in trans of the minimal interacting domain of MreC with PBP2 in the periplasmic space leads to cell rounding, suggesting that the PBP2/MreC complex formation in vivo is essential for cell morphology.
细菌细胞形状的定义是一个复杂的过程,需要参与复杂的大分子机器的多个组件。我们旨在表征螺旋细菌幽门螺杆菌细胞形状的决定因素。使用以关键细胞伸长蛋白 PBP2 为诱饵的酵母双杂交筛选,我们鉴定了 PBP2 和 MreC 之间的相互作用。MreC 参与此相互作用的最小区域范围为 116 至 226 个氨基酸。使用重组蛋白,我们通过亲和和大小排阻层析以及表面等离子体共振显示 PBP2 和 MreC 形成稳定的复合物。在体内,两种蛋白质显示出相似的空间定位,并且它们的复合物具有明显的 1:1 化学计量比;这些结果通过分析超速离心和化学交联在体外得到证实。PBP2:MreC 复合物的小角度 X 射线散射分析表明 MreC 直接与 PBP2 的 C 末端区域相互作用。耗尽 PBP2 或 MreC 都会导致过渡到失去活力的球形细胞。最后,在周质空间中转基因表达 MreC 与 PBP2 的最小相互作用结构域会导致细胞变圆,表明体内 PBP2/MreC 复合物的形成对于细胞形态至关重要。