Mahajan Chavi, Patel Krunal, Khan Bashir M, Rawal Shuban S
Arya Hybrid Seeds Ltd., Chitengaon, Aurangabad, Maharashtra, 4311005, India.
J Mol Model. 2015 Jul;21(7):184. doi: 10.1007/s00894-015-2730-1. Epub 2015 Jul 3.
Dhurrinase, a cyanogenic β-glucosidase from Sorghum bicolor is the key enzyme responsible for the hydrolysis of dhurrin to produce toxic hydrogen cyanide, as a part of plant defence mechanism. Dhurrinase 1 (SbDhr1) and dhurrinase 2 (SbDhr2), two isozymes have been isolated and characterized from S. bicolor. However, there is no information in the literature about the three dimensional (3D) structure of SbDhr2 and molecular interactions involved between the protein and ligand. In this study, the three dimensional structure of SbDhr2 was built based on homology modeling by using the X-ray crystallographic structure of its close homologue SbDhr1 as the template. The generated 3D model was energy minimized and the quality was validated by Ramachndran plot, various bioinformatic tools and their relevant parameters. Stability, folding-unfolding and flexibility of the modeled SbDhr2 was evaluated on the basis of RMSD, radius of gyration (Rg) and RMSF values respectively, obtained through molecular dynamic (MD) simulation. Further, molecular docking was performed with its natural substrate dhurrin, one substrate analogue, three un-natural substrates, and one inhibitor. Analysis of molecular interactions in the SbDhr2-ligand complexes revealed the key amino acid residues responsible to stabilize the ligands within the binding pocket through non-bonded interactions and some of them were found to be conserved (Glu239, Tyr381, Trp426, Glu454, Trp511). Reasonably broader substrate specificity of SbDhr2 was explained through the wider entrance passage observed in comparison to SbDhr1.
高粱氰醇酶是一种来自双色高粱的生氰β-葡萄糖苷酶,作为植物防御机制的一部分,它是负责将高粱氰苷水解产生有毒氰化氢的关键酶。已从双色高粱中分离并鉴定出两种同工酶,即高粱氰醇酶1(SbDhr1)和高粱氰醇酶2(SbDhr2)。然而,文献中没有关于SbDhr2三维(3D)结构以及该蛋白质与配体之间分子相互作用的信息。在本研究中,以其紧密同源物SbDhr1的X射线晶体结构为模板,通过同源建模构建了SbDhr2的三维结构。对生成的3D模型进行能量最小化,并通过拉氏图、各种生物信息学工具及其相关参数验证其质量。分别基于通过分子动力学(MD)模拟获得的均方根偏差(RMSD)、回转半径(Rg)和均方根波动(RMSF)值,评估了建模的SbDhr2的稳定性、折叠-去折叠和灵活性。此外,还对其天然底物高粱氰苷、一种底物类似物、三种非天然底物和一种抑制剂进行了分子对接。对SbDhr2-配体复合物中分子相互作用的分析揭示了通过非键相互作用稳定结合口袋内配体的关键氨基酸残基,其中一些被发现是保守的(Glu239、Tyr381、Trp426、Glu454、Trp511)。与SbDhr1相比,观察到的更宽的入口通道解释了SbDhr2合理更宽的底物特异性。