INRS-Institut Armand-Frappier, Université du Québec, Laval, Québec, Canada.
PLoS One. 2013 Sep 10;8(9):e73727. doi: 10.1371/journal.pone.0073727. eCollection 2013.
Pseudomonas aeruginosa is an important opportunistic human pathogen that can establish bacterial communication by synchronizing the behavior of individual cells in a molecular phenomenon known as "quorum sensing". Through an elusive mechanism involving gene products of the pqs operon, the PqsE enzyme is absolutely required for the synthesis of extracellular phenazines, including the toxic blue pigment pyocyanin, effectively allowing cells to achieve full-fledged virulence. Despite several functional and structural attempts at deciphering the role of this relevant enzymatic drug target, no molecular function has yet been ascribed to PqsE. In the present study, we report a series of alanine scanning experiments aimed at altering the biological function of PqsE, allowing us to uncover key amino acid positions involved in the molecular function of this enzyme. We use sequence analysis and structural overlays with members of homologous folds to pinpoint critical positions located in the vicinity of the ligand binding cleft and surrounding environment, revealing the importance of a unique C-terminal α-helical motif in the molecular function of PqsE. Our results suggest that the active site of the enzyme involves residues that extend further into the hydrophobic core of the protein, advocating for a lid-like movement of the two terminal helices. This information should help design virtual libraries of PqsE inhibitors, providing means to counter P. aeruginosa virulence acquisition and helping to reduce nosocomial infections.
铜绿假单胞菌是一种重要的机会性病原体,它可以通过同步个体细胞的行为来建立细菌通讯,这种分子现象被称为“群体感应”。通过涉及 pqs 操纵子基因产物的难以捉摸的机制,PqsE 酶对于胞外吩嗪的合成是绝对必需的,包括有毒的蓝色色素绿脓菌素,有效地使细胞能够充分发挥毒力。尽管人们对这一相关酶药物靶点的功能和结构进行了多次尝试,但尚未赋予 PqsE 分子功能。在本研究中,我们报告了一系列旨在改变 PqsE 生物学功能的丙氨酸扫描实验,使我们能够发现参与该酶分子功能的关键氨基酸位置。我们使用序列分析和与同源折叠成员的结构叠加来确定位于配体结合裂隙及其周围环境附近的关键位置,揭示了独特的 C 末端α-螺旋基序在 PqsE 分子功能中的重要性。我们的结果表明,酶的活性位点涉及延伸到蛋白质疏水区更深的残基,支持两个末端螺旋的盖样运动。这些信息应该有助于设计 PqsE 抑制剂的虚拟文库,提供对抗铜绿假单胞菌毒力获得的手段,并有助于减少医院感染。