School of Biological Sciences, Nanyang Technological University, 60 Nanyang Drive, 637551, Singapore, Singapore.
Nanyang Environment and Water Research Institute (NEWRI), Interdisciplinary Graduate School, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore, Singapore.
Sci Rep. 2018 Jan 18;8(1):1155. doi: 10.1038/s41598-018-19504-w.
The threat of antibiotic resistant bacteria has called for alternative antimicrobial strategies that would mitigate the increase of classical resistance mechanism. Many bacteria employ quorum sensing (QS) to govern the production of virulence factors and formation of drug-resistant biofilms. Targeting the mechanism of QS has proven to be a functional alternative to conventional antibiotic control of infections. However, the presence of multiple QS systems in individual bacterial species poses a challenge to this approach. Quorum sensing inhibitors (QSI) and quorum quenching enzymes (QQE) have been both investigated for their QS interfering capabilities. Here, we first simulated the combination effect of QQE and QSI in blocking bacterial QS. The effect was next validated by experiments using AiiA as QQE and G1 as QSI on Pseudomonas aeruginosa LasR/I and RhlR/I QS circuits. Combination of QQE and QSI almost completely blocked the P. aeruginosa las and rhl QS systems. Our findings provide a potential chemical biology application strategy for bacterial QS disruption.
抗生素耐药菌的威胁要求采取替代抗菌策略,以减轻经典耐药机制的增加。许多细菌利用群体感应(QS)来控制毒力因子的产生和耐药生物膜的形成。针对 QS 机制已被证明是一种替代传统抗生素控制感染的有效方法。然而,单个细菌物种中存在多种 QS 系统对这种方法提出了挑战。群体感应抑制剂(QSI)和群体感应淬灭酶(QQE)都因其 QS 干扰能力而被研究。在这里,我们首先模拟了 QQE 和 QSI 阻断细菌 QS 的组合效应。然后使用 AiiA 作为 QQE 和 G1 作为 QSI 在铜绿假单胞菌 LasR/I 和 RhlR/I QS 电路上验证了该效果。QQE 和 QSI 的组合几乎完全阻断了铜绿假单胞菌的 las 和 rhl QS 系统。我们的研究结果为细菌 QS 破坏提供了一种潜在的化学生物学应用策略。