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首页> 外文期刊>Journal of molecular graphics & modelling >Protein modeling and active site binding mode interactions of myrosinase-sinigrin in Brassica juncea - An in silico approach
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Protein modeling and active site binding mode interactions of myrosinase-sinigrin in Brassica juncea - An in silico approach

机译:芥菜中黑芥子酶-芥子苷的蛋白质建模和活性位点结合模式相互作用-一种计算机方法

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Myrosinase, the only known S-glycosidase, occurs particularly in Cruciferae family. It is responsible for the hydrolysis of glucosinolates and serves as a vital element of plant defense system. The biological and chemical properties of myrosinase catalyzed products of glucosinolates are well characterized. The myrosinase-protein-sequence of Brassica juncea was retrieved from NCBI database and its 3-D model was generated on the basis of crystal structure of 1MYR-A, 1E4M-M and 1DWA-M chains of myrosinase from Sinapis alba by employing Modeller9v7 program. Homolog templates from S. alba exhibited 72% identity with target sequence. The model was optimized by using molecular dynamics (MD) approach together with simulated annealing (SA) methods in the same Modeller program, and eventually verified and validated on SAVES (Structure Analysis and Verification Server) and PROCHECK programs, respectively. Ramachandran plot obtained through PROCHECK program depicted that 99.8% of total residues were confined to the allowed region while only one residue (Thr92) was restrained to the disallowed region. Additionally, B. juncea myrosinase contains three disulphide bridges which were found to be conserved in S. alba homologs as well. Further, overlapping of B. juncea myrosinase with that of template protein 1MYR-A from S. alba stipulates the amino acid residues Arg115, Gln207, Thr210, Asn350, Tyr352 and Glu429 that constitute active site of the enzyme. Active site analysis also speculates the presence of a hydrophobic pocket in addition to seven N-glycosylation sites. Docking studies of enzyme and substrate illuminate the interactions of various active site residues with diverse groups of sinigrin. Therefore, the present study furnishes the first significant, in silico insight into the 3-D structure, active site machinery, and enzyme-substrate interactions of B. juncea myrosinase.
机译:黑芥子酶是唯一已知的S-糖苷酶,特别是在十字花科中。它负责芥子油苷的水解,是植物防御系统的重要组成部分。芥子油苷的黑芥子酶催化产物的生物学和化学性质已被很好地表征。从NCBI数据库中检索芥菜芥子酸酯酶的蛋白质序列,并利用Modeller9v7程序根据芥子芥子酶的1MYR-A,1E4M-M和1DWA-M链的晶体结构生成3-D模型。 。来自S. alba的同源模板与目标序列具有72%的同一性。通过在同一Modeller程序中使用分子动力学(MD)方法和模拟退火(SA)方法对模型进行了优化,并最终分别在SAVES(结构分析和验证服务器)程序和PROCHECK程序上进行了验证。通过PROCHECK程序获得的Ramachandran图显示,总残基的99.8%被限制在允许的区域内,而只有一个残基(Thr92)被限制在不允许的区域内。此外,Juncea芥子黑素酶含有三个二硫键,它们在S. alba同源物中也被发现是保守的。此外,芥菜芥子黑素酶与来自白假单胞菌的模板蛋白1MYR-A的重叠规定了构成该酶活性位点的氨基酸残基Arg115,Gln207,Thr210,Asn350,Tyr352和Glu429。活性位点分析还推测除了七个N-糖基化位点之外,还存在疏水性囊袋。酶和底物的对接研究阐明了各种活性位点残基与不同组的芥子苷的相互作用。因此,本研究为芥菜芥子气黑素酶的3-D结构,活性位点机制和酶-底物相互作用提供了第一个重要的计算机真知灼见。

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