Department of Biology and Biotechnology "Charles Darwin", Sapienza University of Rome, Rome, Italy.
Institute of Molecular Biology and Pathology, CNR, Rome, Italy.
Sci Rep. 2020 Jul 9;10(1):11276. doi: 10.1038/s41598-020-68054-7.
Lipopolysaccharide (LPS) is a critical component of the outer membrane (OM) of many Gram-negative bacteria. LPS is translocated to the OM by the LPS transport (Lpt) system. In the human pathogen Pseudomonas aeruginosa, the periplasmic Lpt component, LptH, is essential for LPS transport, planktonic and biofilm growth, OM stability and infectivity. LptH has been proposed to oligomerize and form a protein bridge that accommodates LPS during transport. Based on the known LptH crystal structure, here we predicted by in silico modeling five different sites likely involved in LptH oligomerization. The relevance of these sites for LptH activity was verified through plasmid-mediated expression of site-specific mutant proteins in a P. aeruginosa lptH conditional mutant. Complementation and protein expression analyses provided evidence that all mutated sites are important for LptH activity in vivo. It was observed that the lptH conditional mutant overcomes the lethality of nonfunctional lptH variants through RecA-mediated homologous recombination between the wild-type lptH gene in the genome and mutated copies in the plasmid. Finally, biochemical assays on purified recombinant proteins showed that some LptH variants are indeed specifically impaired in oligomerization, while others appear to have defects in protein folding and/or stability.
脂多糖(LPS)是许多革兰氏阴性菌外膜(OM)的重要组成部分。LPS 通过 LPS 转运(Lpt)系统转运到 OM。在人类病原体铜绿假单胞菌中,周质 Lpt 成分 LptH 对 LPS 转运、浮游和生物膜生长、OM 稳定性和感染力至关重要。LptH 被提议寡聚化并形成蛋白质桥,在运输过程中容纳 LPS。基于已知的 LptH 晶体结构,我们通过计算机建模预测了五个可能参与 LptH 寡聚化的不同位点。通过在铜绿假单胞菌 lptH 条件突变体中质粒介导表达定点突变蛋白,验证了这些位点对 LptH 活性的相关性。互补和蛋白表达分析提供的证据表明,所有突变位点在体内对 LptH 活性都很重要。观察到 lptH 条件突变体通过基因组中野生型 lptH 基因和质粒中突变拷贝之间的 RecA 介导的同源重组克服了非功能性 lptH 变体的致死性。最后,对纯化的重组蛋白进行的生化分析表明,一些 LptH 变体确实在寡聚化方面受到特异性损伤,而其他变体似乎在蛋白折叠和/或稳定性方面存在缺陷。