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Application of Dual Inhibition Concept within Looped Autoregulatory Systems toward Antivirulence Agents against Pseudomonas aeruginosa Infections

机译:双重抑制概念在环状自动调节系统中对铜绿假单胞菌感染的抗毒剂的应用

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Pseudomonas aeruginosa quorum-sensing (QS) is a sophisticated network of genome-wide regulation triggered in response to population density. A major component is the self-inducing.pseudomonas quinolone signal (PQS) QS system that regulates the production of several nonvital virulence- and biofilm-related determinants. Hence, QS circuitry is an attractive target for antivirulence agents with lowered resistance development potential and a good Model to study the concept of polypharmacology in autoloop-regulated systems per se. Based on the finding that a combination of PqsR antagonist and PqsD inhibitor synergistically lowers pyocyanin, we have developed a dual-inhibitor compound of low molecular weight and high solubility that targets PQS transcriptional regulator (PqsR) and PqsD, a key enzyme in the biosynthesis of PQS-QS signal molecules (HHQ and PQS). In vitro, this compound markedly reduced virulence factor production and biofilm formation accompanied by a diminished content of extracellular DNA (eDNA). Additionally, coadministration with ciprofloxacin increased susceptibility of PA14 to antibiotic treatment under biofilm conditions. Finally, disruption of pathogenicity mechanisms was also assessed in vivo, with significantly increased survival of challenged larvae in a Galleria mellonella infection model. Favorable physicochemical properties and effects on virulence/biofilm establish a promising starting point for further optimization. In particular, the ability to address two targets of the PQS autoinduction cycle at the same time with a single compound holds great promise in achieving enhanced synergistic cellular effects while potentially lowering rates of resistance development.
机译:铜绿假单胞菌群体感应(QS)是一个复杂的全基因组调控网络,可响应种群密度而触发。一个主要成分是自我诱导的假单胞菌喹诺酮信号(PQS)QS系统,该系统调节几种与病毒和生物膜相关的非关键决定因素的产生。因此,QS电路是抗毒剂的诱人目标,具有降低的耐药性发展潜力,并且是研究自身自动调节系统中多药理学概念的良好模型。基于PqsR拮抗剂和PqsD抑制剂的组合可协同降低绿脓素的发现,我们开发了一种低分子量和高溶解度的双重抑制剂化合物,该化合物靶向PQS转录调节因子(PqsR)和PqsD(生物合成的关键酶)。 PQS-QS信号分子(HHQ和PQS)。在体外,该化合物显着降低了毒力因子的产生和生物膜的形成,并伴随着细胞外DNA(eDNA)含量的减少。另外,与环丙沙星共同给药会增加PA14在生物膜条件下对抗生素治疗的敏感性。最后,在体内还评估了致病性机制的破坏,并且在拱廊感染模型中受攻击幼虫的存活率显着提高。良好的理化性质以及对毒力/生物膜的影响为进一步优化奠定了有希望的起点。特别是,使用单一化合物同时解决PQS自动诱导周期的两个靶标的能力在实现增强的协同细胞效应同时潜在降低耐药性发展的速率方面具有广阔的前景。

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