Ali Syed Ghazanfar, Ansari Mohammad Azam, Sajid Jamal Qazi Mohd, Khan Haris M, Jalal Mohammad, Ahmad Hilal, Mahdi Abbas Ali
Department of Microbiology, Nanotechnology and Antimicrobial Drug Resistance Research Laboratory, Jawaharlal Nehru Medical College and Hospital, Aligarh Muslim University, Aligarh, Uttar Pradesh 202002 India.
Department of Microbiology, Institute of Research and Medical Consultations (IRMC), University of Dammam, Dammam, 31441 Saudi Arabia.
In Silico Pharmacol. 2017 Oct 20;5:12. doi: 10.1007/s40203-017-0031-3. eCollection 2017.
an opportunistic pathogen regulates its virulence through Quorum sensing (QS) mechanism comprising of Las and Rhl system. Targeting of QS mechanism could be an ideal strategy to combat infection caused by . . Silver nanoparticles (AgNPs) have been broadly applied as antimicrobial agents against a number of pathogenic bacterial and fungal strains, but have not been reported as an anti-QS agent. Therefore, the aim of present work was to show the computational analysis for the interaction of AgNPs with the QS system using an In silico approach. In silico studies showed that AgNPs got 'locked' deeply into the active site of respective proteins with their surrounding residues. The molecular docking analysis clearly demonstrated that AgNPs got bound to the catalytic cleft of LasI synthase (Asp73-Ag = 3.1 Å), RhlI synthase (His52-Ag = 2.8 Å), transcriptional receptor protein LasR (Leu159-Ag = 2.3 Å) and RhlR (Trp10-Ag = 3.1 Å and Glu34-Ag = 3.2 Å). The inhibition of LasI/RhlI synthase by AgNPs blocked the biosynthesis of AHLs, thus no AHL produced, no QS occurred. Further, interference with transcriptional regulatory proteins led to the inactivation of LasR/RhlR system that finally blocked the expression of QS-controlled virulence genes. Our findings clearly demonstrate the anti-QS property of AgNPs in . which could be an alternative approach to the use of traditional antibiotics for the treatment of . infection.
一种机会致病菌通过由Las和Rhl系统组成的群体感应(QS)机制来调节其毒力。针对QS机制可能是对抗由……引起的感染的理想策略。银纳米颗粒(AgNPs)已被广泛用作针对多种致病细菌和真菌菌株的抗菌剂,但尚未被报道为一种抗QS剂。因此,本研究的目的是使用计算机模拟方法展示AgNPs与QS系统相互作用的计算分析。计算机模拟研究表明,AgNPs与其周围残基一起深深地“锁定”在各自蛋白质的活性位点中。分子对接分析清楚地表明,AgNPs与LasI合酶的催化裂隙(Asp73 - Ag = 3.1 Å)、RhlI合酶(His52 - Ag = 2.8 Å)、转录受体蛋白LasR(Leu159 - Ag = 2.3 Å)和RhlR(Trp10 - Ag = 3.1 Å和Glu34 - Ag = 3.2 Å)结合。AgNPs对LasI/RhlI合酶的抑制作用阻断了AHLs的生物合成,因此没有产生AHLs,也就没有发生QS。此外,对转录调节蛋白的干扰导致LasR/RhlR系统失活,最终阻断了QS控制的毒力基因的表达。我们的研究结果清楚地证明了AgNPs在……中的抗QS特性,这可能是一种替代传统抗生素用于治疗……感染的方法。