Study of Oxadiazole derivatives as precursor for multi-functional inhibitor to SARS-CoV-2: A detailed virtual screening analysis

Q4 Chemistry Mongolian Journal of Chemistry Pub Date : 2024-02-01 DOI:10.5564/mjc.v25i51.2909
Vikash Kumar, Sumit Kumar
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Abstract

SARS-CoV-2, the virus responsible for the COVID-19 pandemic, is highly contagious and has caused widespread loss of life. In the quest to find effective antiviral agents, attention has turned to oxadiazole derivatives, which are known for their potential antiviral properties in such as CoViTris2020, ChloViD2020, etc. To evaluate their effectiveness, molecular docking and molecular dynamics simulations are conducted for various oxadiazole derivative in interactions with critical proteins involved in the viral infection process. These proteins encompass transmembrane-serine-2 (TMPRSS2), 3-chymotrypsin-like-protease (3CLpro), angiotensin-converting-enzyme-2 (ACE2), and papain-like-protease (PLpro). The study shows that the oxadiazole derivatives exhibited their most stable complexes when interacting with TMPRSS2 in comparison to 3CLpro, ACE2, and PLpro. In particular, Oxa8 displayed a binding energy of -6.52 kcal/mol with TMPRSS2. In contrast, the binding energies with ACE2, 3CLpro, and PLpro were -5.74, -4.56, and -5.56 kcal/mol, respectively. RMSD analysis during MD simulations demonstrated that the complex structure remained consistently stable. During the initial 2 ns, the RMSD value for the ligand concerning its interaction with the protein backbone hovered around 2 Å, indicating a sustained level of structural stability. In conclusion, this study suggests that oxadiazole derivative Oxa8 holds promise as a potential inhibitor of SARS-CoV-2, particularly due to its strong binding affinity with TMPRSS2 and its enduring structural stability observed in molecular dynamics simulations.
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作为 SARS-CoV-2 多功能抑制剂前体的噁二唑衍生物研究:详细的虚拟筛选分析
SARS-CoV-2 是导致 COVID-19 大流行的病毒,具有高度传染性,造成了广泛的生命损失。在寻找有效抗病毒药物的过程中,人们把注意力转向了噁二唑衍生物,因为它们具有潜在的抗病毒特性,如 CoViTris2020、ChloViD2020 等。为了评估它们的有效性,我们对各种噁二唑衍生物与病毒感染过程中的关键蛋白的相互作用进行了分子对接和分子动力学模拟。这些蛋白质包括跨膜丝氨酸-2(TMPRSS2)、3-糜蛋白酶样蛋白酶(3CLpro)、血管紧张素转换酶-2(ACE2)和木瓜蛋白酶样蛋白酶(PLpro)。研究表明,与 3CLpro、ACE2 和 PLpro 相比,噁二唑衍生物在与 TMPRSS2 作用时显示出最稳定的复合物。其中,Oxa8 与 TMPRSS2 的结合能为 -6.52 kcal/mol。相比之下,与 ACE2、3CLpro 和 PLpro 的结合能分别为-5.74、-4.56 和-5.56 kcal/mol。MD 模拟期间的 RMSD 分析表明,复合物结构始终保持稳定。在最初的 2 毫微秒内,配体与蛋白质骨架相互作用的 RMSD 值徘徊在 2 Å 左右,表明其结构具有持续的稳定性。总之,本研究表明噁二唑衍生物 Oxa8 有希望成为 SARS-CoV-2 的潜在抑制剂,特别是因为它与 TMPRSS2 的结合亲和力很强,而且在分子动力学模拟中观察到它具有持久的结构稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mongolian Journal of Chemistry
Mongolian Journal of Chemistry Materials Science-Materials Chemistry
CiteScore
1.10
自引率
0.00%
发文量
5
审稿时长
20 weeks
期刊最新文献
Antibacterial and photocatalytic effects of newly synthesized zinc oxide nanoparticles derived from Mongolian honey Engineering polyamide materials: s-triazine framework with specialized bulky side chains for advanced applications Cytotoxicity screening of 114 Mongolian plant extracts on liver, colon, breast, and cervix cancer cell lines Study of Oxadiazole derivatives as precursor for multi-functional inhibitor to SARS-CoV-2: A detailed virtual screening analysis Study of Oxadiazole derivatives as precursor for multi-functional inhibitor to SARS-CoV-2: A detailed virtual screening analysis
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