Comparative molecular docking and toxicity between carbon-capped metal oxide nanoparticles and standard drugs in cancer and bacterial infections

IF 2.2 4区 工程技术 Q3 PHARMACOLOGY & PHARMACY Bioimpacts Pub Date : 2023-09-05 DOI:10.34172/bi.2023.27778
Navid Mohammadjani, Sahand Karimi, Musa Moetasam Zorab, Morahem Ashengroph, Mehran Alavi
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Abstract

Introduction: Nanoparticles (NPs) are of great interest in the design of various drugs due to their high surface-to-volume ratio, which result from their unique physicochemical properties. Because of the importance of examining the interactions between newly designed particles with different targets in the case of various diseases, techniques for examining the interactions between these particles with different targets, many of which are proteins, are now very common. Methods: In this study, the interactions between metal oxide nanoparticles (MONPs) covered with a carbon layer (Ag2O3, CdO, CuO, Fe2O3, FeO, MgO, MnO, and ZnO NPs) and standard drugs related to the targets of Cancer and bacterial infections were investigated using the molecular docking technique with AutoDock 4.2.6 software tool. Finally, the PRO TOX-II online tool was used to compare the toxicity (LD50) and molecular weight of these MONPs to standard drugs. Results: According to the data obtained from the semi flexible molecular docking process, MgO and Fe2O3 NPs performed better than standard drugs in several cases. MONPs typically have a lower 50% lethal dose (LD50) and a higher molecular weight than standard drugs. MONPs have shown a minor difference in binding energy for different targets in three diseases, which probably can be attributed to the specific physicochemical and pharmacophoric properties of MONPs. Conclusion: The toxicity of MONPs is one of the major challenges in the development of drugs based on them. According to the results of these molecular docking studies, MgO and Fe2O3 NPs had the highest efficiency among the investigated MONPs.
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碳顶金属氧化物纳米颗粒与标准药物在癌症和细菌感染中的分子对接和毒性比较
纳米粒子(NPs)由于其独特的物理化学性质而具有很高的表面体积比,因此在各种药物的设计中引起了极大的兴趣。由于检测新设计的颗粒与不同靶标之间的相互作用在各种疾病中的重要性,检测这些颗粒与不同靶标(其中许多是蛋白质)之间相互作用的技术现在非常普遍。方法:利用AutoDock 4.2.6软件工具,采用分子对接技术,研究碳层覆盖的金属氧化物纳米粒子(Ag2O3、CdO、CuO、Fe2O3、FeO、MgO、MnO、ZnO纳米粒子)与癌症和细菌感染相关靶点标准药物之间的相互作用。最后,使用PRO TOX-II在线工具比较这些MONPs与标准药物的毒性(LD50)和分子量。结果:根据半柔性分子对接过程获得的数据,MgO和Fe2O3 NPs在某些情况下优于标准药物。MONPs通常比标准药物具有更低的50%致死剂量(LD50)和更高的分子量。在三种疾病中,MONPs对不同靶点的结合能表现出微小的差异,这可能与MONPs特有的物理化学和药理特性有关。结论:MONPs的毒性是基于其开发药物的主要挑战之一。根据这些分子对接研究的结果,MgO和Fe2O3 NPs在所研究的MONPs中效率最高。
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来源期刊
Bioimpacts
Bioimpacts Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
4.80
自引率
7.70%
发文量
36
审稿时长
5 weeks
期刊介绍: BioImpacts (BI) is a peer-reviewed multidisciplinary international journal, covering original research articles, reviews, commentaries, hypotheses, methodologies, and visions/reflections dealing with all aspects of biological and biomedical researches at molecular, cellular, functional and translational dimensions.
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