Department of Biochemistry, Periyar University, Salem, 636011, Tamil Nadu, India.
Department of Biochemistry, Sri Ganesh College of Arts and Science, Salem, 636014, Tamil Nadu, India.
J Mol Model. 2023 Jul 8;29(8):238. doi: 10.1007/s00894-023-05616-2.
Chronic inflammation is a risk factor for diabetes, but it can also be a complication of diabetes, leading to severe diabetes and causing many other clinical manifestations. Inflammation is a major emerging complication in both type I and type II diabetes, which causes increasing interest in targeting inflammation to improve and control diabetes. Diabetes with insulin resistance and impaired glucose utilization in humans and their underlying mechanism is not fully understood. But a growing understanding of the intricacy of the insulin signaling cascade in diabetic inflammatory cells reveals potential target genes and their proteins responsible for severe insulin resistance. With this baseline concept, the current project explores the binding affinities of the hyaluronic acid anti-diabetic compounds conjugates to such target proteins in diabetic inflammatory cells and their molecular geometries. A range of 48 anti-diabetic compounds was screened against aldose reductase binding pocket 3 protein target through in silico molecular docking, and results revealed that three compounds viz, metformin (CID:4091), phenformin (CID:8249), sitagliptin (CID:4,369,359), possess significant binding affinity out of 48 chosen drugs. Further, these three anti-diabetic compounds were conjugated with hyaluronic acid (HA), and their binding affinity and their molecular geometrics towards aldose reductase enzyme were screened compared with the free form of the drug. The molecular geometries of three shortlisted drugs (metformin, phenformin, sitagliptin) and their HA conjugates were also explored through density functional theory studies, and it proves their good molecular geometry towards pocket 3 of aldose reductase target. Further, MD simulation trajectories affirm that HA conjugates possess good binding affinity and simulation trajectories with protein target aldose reductase than a free form of the drug. Our current study unravels the new mechanism of drug targeting for diabetes through HA conjugation for inflammatory diabetes. HA conjugates act as novel drug candidates for treating inflammatory diabetes; however, it needs further human clinical trials.
For ligand structure, PubChem, ACD chem sketch, and online structure file generator platform are utilized for ligand preparation. Target protein aldose reductase obtained from protein database (PDB). For molecular docking analysis, AutoDock Vina (Version 4) was utilized. pKCSM online server used to predict ADMET properties of the above three shortlisted drugs from the docking study. Using mol-inspiration software (version 2011.06), three shortlisted compounds' bioactivity scores were predicted. DFT analysis for three shortlisted anti-diabetic drugs and their hyaluronic acid conjugates were calculated using a functional B3LYP set of Gaussian 09 software. Molecular dynamics simulation calculations for six chosen protein-ligand complexes were done through YASARA dynamics software and AMBER14 force field.
慢性炎症是糖尿病的一个危险因素,但它也可能是糖尿病的并发症,导致严重的糖尿病,并引起许多其他临床表现。炎症是 1 型和 2 型糖尿病的一个主要新出现的并发症,这引起了人们对靶向炎症以改善和控制糖尿病的兴趣。人类的胰岛素抵抗和葡萄糖利用受损的糖尿病及其潜在机制尚未完全阐明。但对糖尿病炎症细胞中胰岛素信号级联的复杂性的认识不断加深,揭示了潜在的靶基因及其负责严重胰岛素抵抗的蛋白质。基于这一基线概念,目前的项目探索了透明质酸抗糖尿病化合物缀合物与糖尿病炎症细胞中此类靶蛋白的结合亲和力及其分子几何形状。通过计算机分子对接筛选了 48 种抗糖尿病化合物对醛糖还原酶结合口袋 3 蛋白靶标的结合亲和力,结果表明,在所选择的 48 种药物中,有三种化合物(二甲双胍(CID:4091)、苯乙双胍(CID:8249)、西他列汀(CID:4,369,359))具有显著的结合亲和力。此外,将这三种抗糖尿病化合物与透明质酸(HA)缀合,并与药物的游离形式相比,筛选它们对醛糖还原酶的结合亲和力及其分子几何形状。通过密度泛函理论研究还探索了三种入围药物(二甲双胍、苯乙双胍、西他列汀)及其 HA 缀合物的分子几何形状,结果证明它们对醛糖还原酶靶标的口袋 3 具有良好的分子几何形状。此外,MD 模拟轨迹证实,HA 缀合物与蛋白质靶标醛糖还原酶的结合亲和力和模拟轨迹优于药物的游离形式。我们目前的研究通过透明质酸缀合揭示了糖尿病炎症的药物靶向新机制。HA 缀合物可作为治疗炎症性糖尿病的新型候选药物;然而,它需要进一步的人体临床试验。
对于配体结构,使用 PubChem、ACD chem sketch 和在线结构文件生成器平台进行配体准备。从蛋白质数据库(PDB)中获得靶蛋白醛糖还原酶。对于分子对接分析,使用 AutoDock Vina(版本 4)。使用 pKCSM 在线服务器预测上述三种入围药物对接研究的 ADMET 性质。使用 mol-inspiration 软件(版本 2011.06)预测三种入围化合物的生物活性评分。使用 Gaussian 09 软件的功能 B3LYP 集计算三种短名单抗糖尿病药物及其透明质酸缀合物的 DFT 分析。通过 YASARA dynamics 软件和 AMBER14 力场对六种选定的蛋白-配体复合物进行分子动力学模拟计算。