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Structural basis for native agonist and synthetic inhibitor recognition by the Pseudomonas aeruginosa quorum sensing regulator PqsR (MvfR).

机译:铜绿假单胞菌群体感应调节剂PqsR(MvfR)识别天然激动剂和合成抑制剂的结构基础。

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摘要

Bacterial populations co-ordinate gene expression collectively through quorum sensing (QS), a cell-to-cell communication mechanism employing diffusible signal molecules. The LysR-type transcriptional regulator (LTTR) protein PqsR (MvfR) is a key component of alkyl-quinolone (AQ)-dependent QS in Pseudomonas aeruginosa. PqsR is activated by 2-alkyl-4-quinolones including the Pseudomonas quinolone signal (PQS; 2-heptyl-3-hydroxy-4(1H)-quinolone), its precursor 2-heptyl-4-hydroxyquinoline (HHQ) and their C9 congeners, 2-nonyl-3-hydroxy-4(1H)-quinolone (C9-PQS) and 2-nonyl-4-hydroxyquinoline (NHQ). These drive the autoinduction of AQ biosynthesis and the up-regulation of key virulence determinants as a function of bacterial population density. Consequently, PqsR constitutes a potential target for novel antibacterial agents which attenuate infection through the blockade of virulence. Here we present the crystal structures of the PqsR co-inducer binding domain (CBD) and a complex with the native agonist NHQ. We show that the structure of the PqsR CBD has an unusually large ligand-binding pocket in which a native AQ agonist is stabilized entirely by hydrophobic interactions. Through a ligand-based design strategy we synthesized and evaluated a series of 50 AQ and novel quinazolinone (QZN) analogues and measured the impact on AQ biosynthesis, virulence gene expression and biofilm development. The simple exchange of two isosteres (OH for NH₂) switches a QZN agonist to an antagonist with a concomitant impact on the induction of bacterial virulence factor production. We also determined the complex crystal structure of a QZN antagonist bound to PqsR revealing a similar orientation in the ligand binding pocket to the native agonist NHQ. This structure represents the first description of an LTTR-antagonist complex. Overall these studies present novel insights into LTTR ligand binding and ligand-based drug design and provide a chemical scaffold for further anti-P. aeruginosa virulence drug development by targeting the AQ receptor PqsR.
机译:细菌群体通过群体感应(QS)共同协调基因表达,群体感应是一种使用可扩散信号分子的细胞间通信机制。 LysR型转录调节因子(LTTR)蛋白PqsR(MvfR)是铜绿假单胞菌中依赖烷基喹诺酮(AQ)的QS的关键成分。 PqsR被2-烷基-4-喹诺酮类激活,包括Pseudomonas quinolone信号(PQS; 2-庚基-3-羟基-4(1H)-喹诺酮),其前体2-庚基-4-羟基喹啉(HHQ)及其C9同类物,2-壬基-3-羟基-4(1H)-喹诺酮(C9-PQS)和2-壬基-4-羟基喹啉(NHQ)。这些驱动AQ生物合成的自动诱导和关键毒力决定因素的上调随细菌种群密度的变化而变化。因此,PqsR构成了新型抗菌剂的潜在靶标,该抗菌剂通过抑制毒力来减轻感染。在这里,我们介绍了PqsR协同诱导结合域(CBD)的晶体结构以及与天然激动剂NHQ的复合物。我们表明,PqsR CBD的结构具有一个异常大的配体结合口袋,其中天然AQ激动剂完全通过疏水作用而稳定。通过基于配体的设计策略,我们合成并评估了一系列50 AQ和新型喹唑啉酮(QZN)类似物,并测量了对AQ生物合成,毒力基因表达和生物膜发育的影响。两个等位基因的简单交换(OH为NH 2)将QZN激动剂切换为拮抗剂,从而对诱导细菌毒力因子的产生产生影响。我们还确定了与PqsR结合的QZN拮抗剂的复杂晶体结构,在配体结合口袋中与天然激动剂NHQ表现出相似的取向。该结构代表了LTTR-拮抗剂复合物的第一个描述。总体而言,这些研究为LTTR配体结合和基于配体的药物设计提供了新颖的见解,并为进一步的抗P提供了化学支架。通过靶向AQ受体PqsR来开发铜绿毒力药物。

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