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新型杂合次级代谢产物靶向[具体对象]二鸟苷酸环化酶的设计

Design of novel hybrid secondary metabolite targets to diguanylate cyclase of .

作者信息

Tiwari Monalisa, Joshi Richa, Tiwari Vishvanath

机构信息

Department of Biochemistry, Central University of Rajasthan, Bandarsindri, Ajmer 305817, India.

出版信息

FEMS Microbes. 2021 Nov 22;2:xtab017. doi: 10.1093/femsmc/xtab017. eCollection 2021.

Abstract

Biofilm formation in bacteria is a resistance determinant and is positively regulated by cyclic diguanylate signaling. This signaling is a near universal signaling, and c-di-GMP produced by diguanylate cyclase (DGC) in this signaling is involved in different bacterial behaviors. The present study aims to find a plant-based novel hybrid therapeutic agent that can target the DGC of . In this study, we have tried to design a hybrid molecule from the anti-biofilm plant secondary metabolites and screened its binding with the DGC of . The modeled and validated DGC was used to identify the active site and docking grid. Designed hybrid compounds were analysed for their interaction with the active site residues of DGC of . Further, the binding free energies of the docked complexes obtained from the Generalized Born model and Solvent Accessibility (MMGBSA) were analysed. The results indicated that VR-QEg-180 has a predicted high binding affinity with enzyme DGC as compared to other hybrids, parent secondary metabolites and positive control. Molecular dynamics simulation (MDS) analysis confirmed the interaction of VR-QEg-180 with DGC of the . The designed lead has favorable ADMET properties, has no human off-targets and has no predicted cytotoxicity in cell lines. Therefore, the designed hybrid molecule (VR-QEg-180) targeting the DGC of may play a very significant role in controlling this pathogen.

摘要

细菌中的生物膜形成是一种耐药决定因素,并且受环二鸟苷酸信号通路正向调控。这种信号通路是一种近乎通用的信号通路,该信号通路中由二鸟苷酸环化酶(DGC)产生的环二鸟苷酸参与不同的细菌行为。本研究旨在找到一种基于植物的新型混合治疗剂,它能够靶向[具体细菌名称]的DGC。在本研究中,我们尝试从抗生物膜植物次生代谢产物设计一种混合分子,并筛选其与[具体细菌名称]的DGC的结合情况。对建模并验证的DGC用于识别活性位点和对接网格。分析设计的混合化合物与[具体细菌名称]的DGC的活性位点残基的相互作用。此外,分析从广义玻恩模型和溶剂可及性(MMGBSA)获得的对接复合物的结合自由能。结果表明,与其他混合分子、母体次生代谢产物和阳性对照相比,VR-QEg-180与酶DGC具有预测的高结合亲和力。分子动力学模拟(MDS)分析证实了VR-QEg-180与[具体细菌名称]的DGC的相互作用。设计的先导化合物具有良好的ADMET性质,没有人类脱靶效应,并且在细胞系中没有预测的细胞毒性。因此,针对[具体细菌名称]的DGC设计的混合分子(VR-QEg-180)可能在控制这种病原体方面发挥非常重要的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e540/10117848/5146ecc9b09a/xtab017fig1.jpg

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