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Identification of Natural Compound Inhibitors for Multidrug Efflux Pumps of Escherichia coli and Pseudomonas aeruginosa Using In Silico High-Throughput Virtual Screening and In Vitro Validation

机译:使用计算机高通量虚拟筛选和体外验证鉴定大肠埃希菌和铜绿假单胞菌多药外排泵的天然化合物抑制剂

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摘要

Pseudomonas aeruginosa and Escherichia coli are resistant to wide range of antibiotics rendering the treatment of infections very difficult. A main mechanism attributed to the resistance is the function of efflux pumps. MexAB-OprM and AcrAB-TolC are the tripartite efflux pump assemblies, responsible for multidrug resistance in P. aeruginosa and E. coli respectively. Substrates that are more susceptible for efflux are predicted to have a common pharmacophore feature map. In this study, a new criterion of excluding compounds with efflux substrate-like features was used, thereby refining the selection process and enriching the inhibitor identification process. An in-house database of phytochemicals was created and screened using high-throughput virtual screening against AcrB and MexB proteins and filtered by matching with the common pharmacophore models (AADHR, ADHNR, AAHNR, AADHN, AADNR, AAADN, AAADR, AAANR, AAAHN, AAADD and AAADH) generated using known efflux substrates. Phytochemical hits that matched with any one or more of the efflux substrate models were excluded from the study. Hits that do not have features similar to the efflux substrate models were docked using XP docking against the AcrB and MexB proteins. The best hits of the XP docking were validated by checkerboard synergy assay and ethidium bromide accumulation assay for their efflux inhibition potency. Lanatoside C and diadzein were filtered based on the synergistic potential and validated for their efflux inhibition potency using ethidium bromide accumulation study. These compounds exhibited the ability to increase the accumulation of ethidium bromide inside the bacterial cell as evidenced by these increase in fluorescence in the presence of the compounds. With this good correlation between in silico screening and positive efflux inhibitory activity in vitro, the two compounds, lanatoside C and diadzein could be promising efflux pump inhibitors and effective to use in combination therapy against drug resistant strains of P. aeruginosa and E. coli.
机译:铜绿假单胞菌和大肠杆菌对多种抗生素具有抗药性,使得感染的治疗非常困难。归因于阻力的主要机制是外排泵的功能。 MexAB-OprM和AcrAB-TolC是三方外排泵组件,分别负责铜绿假单胞菌和大肠杆菌的多药耐药性。预计更容易外排的底物具有共同的药效团特征图。在这项研究中,使用了排除具有外排底物样特征的化合物的新标准,从而完善了选择过程并丰富了抑制剂的鉴定过程。建立内部植物化学数据库,并使用高通量虚拟筛选AcrB和MexB蛋白进行筛选,并通过与常见药效团模型(AADHR,ADHNR,AAHNR,AADHN,AADNR,AAADN,AAADR,AAANR,AAAHN, AAADD和AAADH)使用已知的外排底物生成。与任何一种或多种外排底物模型匹配的植物化学命中物均不包括在本研究中。使用XP对接AcrB和MexB蛋白的对接,对不具有与外排底物模型相似功能的命中进行对接。 XP对接的最佳命中通过棋盘协同作用测定法和溴化乙锭积累测定法验证了它们的外排抑制能力。根据协同潜能过滤Lanatoside C和diadzein,并使用溴化乙锭积累研究验证其外排抑制潜能。这些化合物表现出增加细菌细胞内溴化乙锭积累的能力,如在化合物存在下这些荧光增加所证明的。由于计算机筛查与体外阳性流出抑制活性之间具有这种良好的相关性,因此,两种化合物,即羊毛脂苷C和diadzein可能是很有前途的流出泵抑制剂,并且可以有效地用于铜绿假单胞菌和大肠杆菌的耐药菌株的联合治疗。

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