In Silico Investigation against Inhibitors of Alpha-Amylase Using Structure-based Screening, Molecular Docking, and Molecular Simulations Studies.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Biochemistry and Biophysics Pub Date : 2024-07-09 DOI:10.1007/s12013-024-01403-9
Fariya Khan, Altaf Ahmad Shah, Ajay Kumar, Salman Akhtar
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Abstract

Type-II diabetes mellitus is a chronic disorder that results from fluctuations in the glucose level leading to hyperglycemia with severe adverse effects increasing worldwide. Alpha-Amylase is the key enzyme involved in the mechanism of glucose formation therefore Alpha-Amylase inhibitors have become a therapeutic target in the development of new leads as they have the potential to suppress glucose levels. Existing drugs targeting Alpha-Amylase highlight major drawbacks in terms of poor absorption rate that causes several gastrointestinal issues. So, this research is aimed to develop novel inhibitors interacting with Alpha-Amylase's active site using structural-based screening, binding pattern analysis, and molecular dynamic simulation. Hence, to search for a potential lead, we analyzed a total of 133 valiolamine derivatives and 535 desoxynojirimycin derivatives that exhibited drug-like properties screened through Lipinski filters. Virtual screening followed by binding interaction analysis we identified ten compounds that exhibited better binding energy scores compared to the standard drugs voglibose and miglitol, used in our study. The docking analysis, ADMET and metabolic site prediction estimated the best top two compounds with good drug profiles. Further, top compounds VG9 and VG15 were promoted to simulation study using the Biovia Discovery study to access the stability at a time interval of 100 ns. MD simulation results revealed that our compound VG9 possesses better conformational stability in the complex to the active site residues of Alpha-Amylase target protein than standard drug voglibose. Thus, our investigation revealed that compound VG9 also exhibits the best pharmacokinetic as well as binding affinity results and could act as a potential lead compound targeting Alpha-Amylase for Type II diabetes.

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利用基于结构的筛选、分子对接和分子模拟研究对α-淀粉酶抑制剂进行硅学研究。
II 型糖尿病是一种慢性疾病,由血糖水平波动导致高血糖,其严重的不良影响在全球范围内日益增加。α-淀粉酶是参与葡萄糖形成机制的关键酶,因此α-淀粉酶抑制剂已成为开发新药物的治疗目标,因为它们具有抑制葡萄糖水平的潜力。现有的以α-淀粉酶为靶点的药物突出的主要缺点是吸收率低,会引起一些胃肠道问题。因此,本研究旨在利用基于结构的筛选、结合模式分析和分子动态模拟,开发与α-淀粉酶活性位点相互作用的新型抑制剂。因此,为了寻找潜在的先导化合物,我们分析了通过利平斯基过滤器筛选出的 133 种缬氨醇胺衍生物和 535 种脱氧野尻霉素衍生物,这些衍生物具有类似药物的特性。通过虚拟筛选和结合相互作用分析,我们确定了十种化合物,与我们研究中使用的标准药物伏格列波糖和米格列醇相比,它们表现出更好的结合能得分。通过对接分析、ADMET 和代谢位点预测,我们选出了具有良好药物特征的最佳前两种化合物。此外,我们还利用 Biovia Discovery 研究软件对前列化合物 VG9 和 VG15 进行了模拟研究,以了解其在 100 毫微秒时间间隔内的稳定性。MD 模拟结果表明,与标准药物伏格列波糖相比,我们的化合物 VG9 在与α-淀粉酶靶蛋白活性位点残基的复合物中具有更好的构象稳定性。因此,我们的研究表明,化合物 VG9 还表现出最佳的药代动力学和结合亲和力结果,可作为针对α-淀粉酶治疗 II 型糖尿病的潜在先导化合物。
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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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