IF 3.8 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Archives of biochemistry and biophysics Pub Date : 2024-09-10 DOI:10.1016/j.abb.2024.110148
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引用次数: 0

摘要

甲型流感病毒,尤其是 H5N1 病毒株,能够引起严重的呼吸道疾病,而且死亡率很高,因此对公共卫生构成重大威胁。针对甲型流感病毒的传统抗病毒药物面临耐药性和药效有限等挑战。因此,需要发现和开发新的抗病毒化合物。本研究主要考察了H5N1聚合酶PB2 CAP结合域与天然化合物相互作用时的稳定性和行为,旨在发现潜在的候选抗病毒药物。通过虚拟筛选过程,选出了 ZINC000096095464、ZINC000044404209、ZINC000001562130 和 ZINC000059779788 四种先导化合物,这些化合物的结合能分别为 -9.6、-9.4、-9.3 和 -9.2 kcal/mol。当与 PB2 复配时,由于形成了大量的键,配体表现出了可接受的结合稳定性。然而,在 200ns MD 模拟分析过程中,有三个配体(ZINC000096095464、ZINC000044404209 和 ZINC000059779788)表现出明显的稳定性,这一点已被轨迹分析所证实。基于 Rg-RMSD 的 FEL 图显示,稳定的构象具有显著的结构稳定性。自由结合能计算也验证了这些复合物的稳定性。这项研究为了解 H5N1 聚合酶 PB2 CAP 结合域与天然化合物复合物的稳定性和动力学提供了宝贵的见解。这些发现凸显了这些天然化合物作为抗 H5N1 流感病毒药物的潜力。此外,这项研究通过证明计算方法在预测和评估潜在候选药物的稳定性和动力学方面的有效性,为更广泛的流感病毒治疗领域做出了贡献。
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Understanding the stability and dynamics of influenza a H5N1 polymerase PB2 CAP-Binding domain in complex with natural compounds for antiviral drug discovery

Influenza A virus, particularly the H5N1 strain, poses a significant threat to public health due to its ability to cause severe respiratory illness and its high mortality rate. Traditional antiviral drugs targeting influenza A virus have faced challenges such as drug resistance and limited efficacy. Therefore, new antiviral compounds are needed to be discovered and developed. This study concentrated on examining the stability and behavior of the H5N1 polymerase PB2 CAP-binding domain when interacting with natural compounds, aiming to identify potential candidates for antiviral drug discovery. Through the virtual screening process, four lead compounds, ZINC000096095464, ZINC000044404209, ZINC000001562130, and ZINC000059779788, were selected, and these compounds showed binding energies −9.6, −9.4, −9.3, and −9.2 kcal/mol, respectively. When complexed with PB2, the ligand showed acceptable binding stability due to significant bond formation. However, during the 200ns MD simulation analysis, three (ZINC000096095464, ZINC000044404209, and ZINC000059779788) showed significant stability, which was proven by the trajectory analysis. The Rg-RMSD-based FEL plot showed significant structural stability due to stable conformers. The free-binding energy calculation also validates the stability of these complexes. This study offers valuable insights into the stability and dynamics of the H5N1 polymerase PB2 CAP-binding domain in complexes with natural compounds. These findings highlight the potential of these natural compounds as antiviral agents against the H5N1 influenza virus. Furthermore, this research contributes to the broader field of influenza virus treatment by demonstrating the effectiveness of computational methods in predicting and evaluating the stability and dynamics of potential drug candidates.

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来源期刊
Archives of biochemistry and biophysics
Archives of biochemistry and biophysics 生物-生化与分子生物学
CiteScore
7.40
自引率
0.00%
发文量
245
审稿时长
26 days
期刊介绍: Archives of Biochemistry and Biophysics publishes quality original articles and reviews in the developing areas of biochemistry and biophysics. Research Areas Include: • Enzyme and protein structure, function, regulation. Folding, turnover, and post-translational processing • Biological oxidations, free radical reactions, redox signaling, oxygenases, P450 reactions • Signal transduction, receptors, membrane transport, intracellular signals. Cellular and integrated metabolism.
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