通过分子对接、动力学模拟和ADMET分析鉴定有希望的SARS-CoV-2主要蛋白酶抑制剂。

IF 3.9 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Ganesh Sharma, Neeraj Kumar, Chandra Shekhar Sharma, Taha Alqahtani, Yewulsew Kebede Tiruneh, Sharifa Sultana, Gabriel Vinícius Rolim Silva, Gabriela de Lima Menezes, Magdi E A Zaki, Jonas Ivan Nobre Oliveira
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引用次数: 0

摘要

由SARS-CoV-2引起的COVID-19大流行继续对全球卫生构成重大挑战。针对病毒的主要蛋白酶(Mpro),这是病毒复制和转录所必需的,为治疗干预提供了一种有希望的方法。本研究采用分子对接和分子动力学模拟等先进的计算技术,筛选一系列抗病毒化合物对SARS-CoV-2 Mpro的潜在抑制作用。对ChemDiv和PubChem数据库中的化合物进行了综合分析。对其理化性质、药代动力学和ADMET(吸收、分布、代谢、排泄和毒性)进行评估,以确定药物的相似性和安全性。化合物4896 - 4038被证明是最有希望的候选化合物。在分子量(491.06)和亲脂性(logP 3.957)、高肠吸收(92.119%)和广泛的组织分布(VDss为0.529)之间表现出良好的平衡,表明其具有良好的口服生物利用度和治疗潜力。分子对接研究表明,4896 - 4038与Mpro活性位点具有较强的结合亲和力,形成氢键、碳氢键、pi-硫键以及多个范德华键和pi-pi堆叠键等关键相互作用。结合能与参比药物X77相当,具有潜在的疗效。300 ns以上的分子动力学模拟证实了Mpro/4896 - 4038蛋白配体复合物的稳定性。自由能景观映射和MM/PBSA计算进一步证实了配合物的良好结合和稳定性。重要的是,4896 - 4038表现出相对有利的安全性。综上所述,化合物4896 - 4038结合了有效的抑制活性和良好的药代动力学和安全性,显示出作为有效的SARS-CoV-2 Mpro抑制剂的巨大潜力。这些结果支持进一步开发4896 - 4038作为抗COVID-19的有前途的治疗剂,值得实验验证和临床研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of promising SARS-CoV-2 main protease inhibitor through molecular docking, dynamics simulation, and ADMET analysis.

The COVID-19 pandemic caused by SARS-CoV-2 continues to pose a major challenge to global health. Targeting the main protease of the virus (Mpro), which is essential for viral replication and transcription, offers a promising approach for therapeutic intervention. In this study, advanced computational techniques such as molecular docking and molecular dynamics simulations were used to screen a series of antiviral compounds for their potential inhibitory effect on the SARS-CoV-2 Mpro. A comprehensive analysis of compounds from the ChemDiv and PubChem databases was performed. The physicochemical properties, pharmacokinetics, and ADMET (Absorption, Distribution, Metabolism, Excretion, and Toxicity) profiles were evaluated to determine drug similarity and safety. Compound 4896 - 4038 proved to be the most promising candidate. It exhibited a favorable balance between molecular weight (491.06) and lipophilicity (logP 3.957), high intestinal absorption (92.119%), and broad tissue distribution (VDss of 0.529), indicating good oral bioavailability and therapeutic potential. Molecular docking studies showed that 4896 - 4038 has a strong binding affinity to the active site of Mpro and forms key interactions, such as hydrogen bonds, carbon-hydrogen bonds, pi-sulfur, and multiple van der Waals and pi-pi stacked bonds. The binding energy was comparable to that of the reference drug X77, indicating potential efficacy. Molecular dynamics simulations over 300 ns confirmed the stability of the Mpro/4896 - 4038 complex of protein-ligand. Free energy landscape mapping and MM/PBSA calculations further substantiated the favorable binding and stability of the complex. Importantly, 4896 - 4038 exhibited a comparatively favorable safety profile. In summary, compound 4896 - 4038 shows significant potential as a potent SARS-CoV-2 Mpro inhibitor, combining potent inhibitory activity with favorable pharmacokinetic and safety profiles. These results support the further development of 4896 - 4038 as a promising therapeutic agent in the fight against COVID-19 that warrants experimental validation and clinical investigation.

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来源期刊
Scientific Reports
Scientific Reports Natural Science Disciplines-
CiteScore
7.50
自引率
4.30%
发文量
19567
审稿时长
3.9 months
期刊介绍: We publish original research from all areas of the natural sciences, psychology, medicine and engineering. You can learn more about what we publish by browsing our specific scientific subject areas below or explore Scientific Reports by browsing all articles and collections. Scientific Reports has a 2-year impact factor: 4.380 (2021), and is the 6th most-cited journal in the world, with more than 540,000 citations in 2020 (Clarivate Analytics, 2021). •Engineering Engineering covers all aspects of engineering, technology, and applied science. It plays a crucial role in the development of technologies to address some of the world''s biggest challenges, helping to save lives and improve the way we live. •Physical sciences Physical sciences are those academic disciplines that aim to uncover the underlying laws of nature — often written in the language of mathematics. It is a collective term for areas of study including astronomy, chemistry, materials science and physics. •Earth and environmental sciences Earth and environmental sciences cover all aspects of Earth and planetary science and broadly encompass solid Earth processes, surface and atmospheric dynamics, Earth system history, climate and climate change, marine and freshwater systems, and ecology. It also considers the interactions between humans and these systems. •Biological sciences Biological sciences encompass all the divisions of natural sciences examining various aspects of vital processes. The concept includes anatomy, physiology, cell biology, biochemistry and biophysics, and covers all organisms from microorganisms, animals to plants. •Health sciences The health sciences study health, disease and healthcare. This field of study aims to develop knowledge, interventions and technology for use in healthcare to improve the treatment of patients.
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