靶向鲍曼不动杆菌中的 PilA:发现抗病毒化合物的计算方法。

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Mohanraj Gopikrishnan, George Priya C Doss
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引用次数: 0

摘要

鲍曼不动杆菌(A. baumannii)由于具有获得抗药性的能力,已成为一种重要的全球性病原体。这种细菌表现出两种不同的运动形式:一种是由 IV 型纤毛(T4P)介导的抽动运动,另一种是独立于附属物的表面相关运动。T4P 在各种细菌中都至关重要,可促进抽动运动、生物膜形成和宿主细胞粘附。合成 T4P 是革兰氏阴性病原体(尤其是鲍曼不动杆菌)的共同特征,这表明 PilA 可能是生物膜相关治疗的可行靶点。本研究旨在通过靶向 PilA 开发药物分子,以减轻鲍曼不动杆菌的毒力。我们使用 Schrodinger 软件,通过高通量虚拟筛选,从 CMNPD、ChemDiv 和 Enamine 抗菌数据库中筛选出 60,766 种化合物。通过额外精度(XP)模式从每个数据库中鉴定出的前两个化合物被用于进一步研究。在确定的 6 个化合物(CMNPD18469、CMNPD20698、Z2377302405、Z2378175729、N039-0021 和 N098-0051)中,对接得分介于 - 5.0 至 - 7.5 kcal/mol 之间。随后,我们对 PilA 配体复合物进行了 300 ns 分子动力学模拟和分子力学泊松-玻尔兹曼表面积(MMPBSA)分析。模拟轨迹分析表明,PilA-配体复合物在动态环境中具有结构稳定性和行为一致性。值得注意的是,PilA-N098-0051 复合物表现出更强的稳定性和稳健的结合相互作用,突显了其作为治疗剂的潜力。这些研究结果表明,所发现的化合物,尤其是 N098-0051,有望成为靶向 PilA 的强效分子,需要通过体外和体内研究进一步验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Targeting PilA in Acinetobacter baumannii: A Computational Approach for Anti-Virulent Compound Discovery.

Acinetobacter baumannii (A. baumannii) has emerged as a critical global pathogen due to its ability to acquire resistance traits. This bacterium exhibits two distinct forms of motility: twitching, mediated by type IV pili (T4P), and surface-associated motility, independent of appendages. T4P is crucial in various bacterial species, facilitating twitching motility, biofilm formation, and host-cell adhesion. The synthesis of T4P is a common feature among Gram-negative pathogens, particularly A. baumannii, suggesting that PilA could be a viable target for biofilm-related treatments. This study aims to develop drug molecules to mitigate A. baumannii virulence by targeting PilA. Using Schrodinger software, we screened 60,766 compounds from the CMNPD, ChemDiv, and Enamine antibacterial databases through high-throughput virtual screening. The top two compounds from each database, identified through extra precision (XP) mode, were subjected to further studies. Among the six compounds identified (CMNPD18469, CMNPD20698, Z2377302405, Z2378175729, N039-0021, and N098-0051), docking scores ranged from - 5.0 to - 7.5 kcal/mol. Subsequently, we conducted 300 ns molecular dynamics simulations and Molecular Mechanics Poisson-Boltzmann Surface Area (MMPBSA) analysis of the PilA-ligand complexes. Analysis of the simulation trajectories indicated structural stability and consistent behavior of the PilA-ligand complexes in a dynamic environment. Notably, the PilA-N098-0051 complex exhibited enhanced stability and robust binding interactions, underscoring its potential as a therapeutic agent. These findings suggest that the identified compounds, particularly N098-0051, hold promise as potent molecules targeting PilA, necessitating further validation through in vitro and in vivo studies.

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来源期刊
Molecular Biotechnology
Molecular Biotechnology 医学-生化与分子生物学
CiteScore
4.10
自引率
3.80%
发文量
165
审稿时长
6 months
期刊介绍: Molecular Biotechnology publishes original research papers on the application of molecular biology to both basic and applied research in the field of biotechnology. Particular areas of interest include the following: stability and expression of cloned gene products, cell transformation, gene cloning systems and the production of recombinant proteins, protein purification and analysis, transgenic species, developmental biology, mutation analysis, the applications of DNA fingerprinting, RNA interference, and PCR technology, microarray technology, proteomics, mass spectrometry, bioinformatics, plant molecular biology, microbial genetics, gene probes and the diagnosis of disease, pharmaceutical and health care products, therapeutic agents, vaccines, gene targeting, gene therapy, stem cell technology and tissue engineering, antisense technology, protein engineering and enzyme technology, monoclonal antibodies, glycobiology and glycomics, and agricultural biotechnology.
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