Department of Horticulture, Sunchon National University, Suncheon 57922, Korea.
Department of Agricultural Education, Sunchon National University, Suncheon 540-950, Korea.
Genes (Basel). 2015 Dec 21;6(4):1315-29. doi: 10.3390/genes6041315.
Myrosinase, which is present in cruciferous plant species, plays an important role in the hydrolysis of glycosides such as glucosinolates and is involved in plant defense. Brassicaceae myrosinases are diverse although they share common ancestry, and structural knowledge about myrosinases from cabbage (Brassica oleracea) was needed. To address this, we constructed a three-dimensional model structure of myrosinase based on Sinapis alba structures using Iterative Threading ASSEmbly Refinement server (I-TASSER) webserver, and refined model coordinates were evaluated with ProQ and Verify3D. The resulting model was predicted with β/α fold, ten conserved N-glycosylation sites, and three disulfide bridges. In addition, this model shared features with the known Sinapis alba myrosinase structure. To obtain a better understanding of myrosinase-sinigrin interaction, the refined model was docked using Autodock Vina with crucial key amino acids. The key nucleophile residues GLN207 and GLU427 were found to interact with sinigrin to form a hydrogen bond. Further, 20-ns molecular dynamics simulation was performed to examine myrosinase-sinigrin complex stability, revealing that residue GLU207 maintained its hydrogen bond stability throughout the entire simulation and structural orientation was similar to that of the docked state. This conceptual model should be useful for understanding the structural features of myrosinase and their binding orientation with sinigrin.
存在于十字花科植物中的黑芥子酶在糖苷如硫代葡萄糖苷的水解中发挥重要作用,并参与植物防御。尽管它们具有共同的起源,但芸薹属黑芥子酶具有多样性,因此需要了解来自甘蓝( Brassica oleracea )的黑芥子酶的结构知识。为了解决这个问题,我们使用 Iterative Threading ASSEmbly Refinement server(I-TASSER)网络服务器,基于白芥( Sinapis alba )结构构建了黑芥子酶的三维模型结构,并使用 ProQ 和 Verify3D 对模型坐标进行了评估。预测的模型具有β/α折叠、十个保守的 N-糖基化位点和三个二硫键。此外,该模型与已知的白芥黑芥子酶结构具有相似特征。为了更好地理解黑芥子酶-黑芥子硫苷的相互作用,使用 Autodock Vina 对接程序对接了经过精修的模型,并使用关键的关键氨基酸进行对接。发现关键亲核残基 GLN207 和 GLU427 与黑芥子硫苷相互作用形成氢键。此外,还进行了 20-ns 的分子动力学模拟,以检查黑芥子酶-黑芥子硫苷复合物的稳定性,结果表明残基 GLU207 在整个模拟过程中保持氢键稳定性,并且结构取向与对接状态相似。该概念模型应该有助于理解黑芥子酶的结构特征及其与黑芥子硫苷的结合取向。