Molecular Dynamics Simulation Studies of Beta-Glucogallin and Dihydro Dehydro Coniferyl Alcohol from Syzygium cumini for its Antimicrobial Activity on Staphylococcus aureus.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Biochemistry and Biophysics Pub Date : 2024-08-31 DOI:10.1007/s12013-024-01489-1
N Bhavyashree, M S Vaishnavi, P Shravani, Sasmita Sabat
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Abstract

With the escalating threat of antimicrobial resistance (AMR), discovering novel therapeutic agents against resistant pathogens like Staphylococcus aureus is crucial. This study explores phytochemicals from Syzygium cumini for their potential efficacy against AMR S. aureus infections, elucidating their mechanisms through in silico methods. We investigated 83 compounds from S. cumini, sourced from PubMed, using rigorous docking analysis against the ATP binding domain AgrC of S. aureus with AMdock with Autodock Vina v1.5.2. Drug-likeness predictions were assessed using SwissADME v2023 and Pass online v2.0. Molecular dynamics (MD) simulations identified promising compounds, focusing on stability and interaction dynamics. Beta-Glucogallin (BEG) and Dihydro Dehydro Coniferyl alcohol (DIH) emerged as significant hits. MD simulations with GROMACS v2020.6 revealed stable BEG and DIH complexes with AgrC, forming six hydrogen bonds with six key amino acids (Arg-303, Asp-338, Glu-342, Glu-384, Lys-389, Gly-396), indicating strong and stable bonding. The binding affinities for DIH and BEG are -73.474 ± 11.104 kJ/mol and -6.319 ± 18.823 kJ/mol with 4BXI, respectively. Our findings highlight BEG and DIH as promising candidates against AMR S. aureus infections, showing favourable binding affinities and stable interactions with AgrC. This study underscores the importance of natural products in combating AMR and demonstrates the utility of computational methodologies in drug discovery. Further experimental validation is warranted to fully exploit these phytochemicals' therapeutic potential.

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小茴香中的 Beta-Glucogallin 和二氢脱氢松柏醇对金黄色葡萄球菌抗菌活性的分子动力学模拟研究
随着抗菌药耐药性(AMR)威胁的不断升级,发现针对金黄色葡萄球菌等耐药性病原体的新型治疗药物至关重要。本研究探讨了小茴香中的植物化学物质对金黄色葡萄球菌感染的潜在疗效,并通过硅学方法阐明了它们的作用机制。我们利用 Autodock Vina v1.5.2 和 AMdock 对金黄色葡萄球菌的 ATP 结合域 AgrC 进行了严格的对接分析,研究了来自 PubMed 的 83 种 S. cumini 化合物。药物相似性预测使用 SwissADME v2023 和 Pass online v2.0 进行评估。分子动力学(MD)模拟确定了有前景的化合物,重点关注稳定性和相互作用动力学。Beta-Glucogallin (BEG) 和 Dihydro Dehydro Coniferyl alcohol (DIH) 成为重要的命中化合物。利用 GROMACS v2020.6 进行的 MD 模拟显示,BEG 和 DIH 与 AgrC 形成了稳定的复合物,与六个关键氨基酸(Arg-303、Asp-338、Glu-342、Glu-384、Lys-389、Gly-396)形成了六个氢键,表明它们之间的结合牢固而稳定。DIH 和 BEG 与 4BXI 的结合亲和力分别为 -73.474 ± 11.104 kJ/mol 和 -6.319 ± 18.823 kJ/mol。我们的研究结果表明,BEG 和 DIH 与 AgrC 有着良好的结合亲和力和稳定的相互作用,有望成为抗 AMR 金黄色葡萄球菌感染的候选药物。这项研究强调了天然产品在抗 AMR 中的重要性,并证明了计算方法在药物发现中的实用性。要充分挖掘这些植物化学物质的治疗潜力,还需要进一步的实验验证。
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来源期刊
Cell Biochemistry and Biophysics
Cell Biochemistry and Biophysics 生物-生化与分子生物学
CiteScore
4.40
自引率
0.00%
发文量
72
审稿时长
7.5 months
期刊介绍: Cell Biochemistry and Biophysics (CBB) aims to publish papers on the nature of the biochemical and biophysical mechanisms underlying the structure, control and function of cellular systems The reports should be within the framework of modern biochemistry and chemistry, biophysics and cell physiology, physics and engineering, molecular and structural biology. The relationship between molecular structure and function under investigation is emphasized. Examples of subject areas that CBB publishes are: · biochemical and biophysical aspects of cell structure and function; · interactions of cells and their molecular/macromolecular constituents; · innovative developments in genetic and biomolecular engineering; · computer-based analysis of tissues, cells, cell networks, organelles, and molecular/macromolecular assemblies; · photometric, spectroscopic, microscopic, mechanical, and electrical methodologies/techniques in analytical cytology, cytometry and innovative instrument design For articles that focus on computational aspects, authors should be clear about which docking and molecular dynamics algorithms or software packages are being used as well as details on the system parameterization, simulations conditions etc. In addition, docking calculations (virtual screening, QSAR, etc.) should be validated either by experimental studies or one or more reliable theoretical cross-validation methods.
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