Interactions of Ozone-Functionalized Activated Charcoal with SARS-Cov-2 Proteases Using Molecular Docking and Dynamics.

Hérica Daniele Costa Araújo, Tiago da Silva Arouche, Raul Nunes de Carvalho Junior, Teodorico Castro Ramalho, Rosivaldo Dos Santos Borges, Mozaniel Santana de Oliveira, Francisco das Chagas Marques, Antonio Maia de Jesus Chaves Neto
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引用次数: 2

Abstract

The high contamination by the SARS-Cov-2 virus has led to the search for ways to minimize contagion. Masks are used as part of a strategy of measures to suppress transmission and save lives. However, they are not sufficient to provide an adequate level of protection against COVID-19. Activated charcoal has an efficient antibacterial action, adsorption and low cost. Here, the interaction between two molecules of activated carbon was analyzed, interacting with two structures of the SARS-Cov-2, through docking and molecular dynamics using the platforms Autodock Vina 4.2.6, Gaussian 09 and Amber 16. As a result, the complexes from ozone-functionalized coal to viral structures happen mainly through hydrophobic interactions at the binding site of each receptor. The values of the mean square deviations of the two systems formed by ligands/receptors and showed better stability. The results of Gibbs free energy showed a better interaction between proteins and functionalized charcoal, with △Gtotal values of -48.530 and -38.882 kcal/mol. Thus, the set formed by combinations of proteins with functionalized activated carbon tends to more efficiently adsorb the protein components of the coronavirus to the pores of the activated carbon with ozone during filtration.

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臭氧功能化活性炭与SARS-Cov-2蛋白酶相互作用的分子对接与动力学研究
SARS-Cov-2病毒的高度污染促使人们寻找最小化传染的方法。口罩是抑制传播和拯救生命措施战略的一部分。然而,这些措施不足以提供针对COVID-19的足够保护。活性炭具有高效的抗菌、吸附、成本低等优点。本文利用Autodock Vina 4.2.6、Gaussian 09和Amber 16平台,通过对接和分子动力学的方法,分析了两种活性炭分子与SARS-Cov-2两种结构的相互作用。因此,从臭氧功能化煤到病毒结构的配合物主要是通过每个受体结合位点的疏水相互作用发生的。配体/受体形成的两种体系的均方差值均表现出较好的稳定性。吉布斯自由能结果表明,蛋白质与功能化木炭的相互作用较好,△Gtotal值分别为-48.530和-38.882 kcal/mol。因此,由蛋白质与功能化活性炭组合形成的集合倾向于在过滤过程中更有效地将冠状病毒的蛋白质成分吸附到活性炭的孔中。
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来源期刊
Journal of nanoscience and nanotechnology
Journal of nanoscience and nanotechnology 工程技术-材料科学:综合
自引率
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审稿时长
3.6 months
期刊介绍: JNN is a multidisciplinary peer-reviewed journal covering fundamental and applied research in all disciplines of science, engineering and medicine. JNN publishes all aspects of nanoscale science and technology dealing with materials synthesis, processing, nanofabrication, nanoprobes, spectroscopy, properties, biological systems, nanostructures, theory and computation, nanoelectronics, nano-optics, nano-mechanics, nanodevices, nanobiotechnology, nanomedicine, nanotoxicology.
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