Abelak K K, Bishop-Bailey D, Nobeli I
Comparative Biomedical Sciences, Royal Veterinary College, Royal College Street, London, NW1 0TU, UK.
Department of Biological Sciences, Institute of Structural and Molecular Biology, Birkbeck, Malet Street, London, WC1E 7HX, UK.
BMC Res Notes. 2019 Nov 21;12(1):760. doi: 10.1186/s13104-019-4797-8.
The data presented here is part of a study that was aimed at characterizing the molecular mechanisms of polyunsaturated fatty acid metabolism by CYP2J2, the main cytochrome P450 enzyme active in the human cardiovasculature. This part comprises the molecular dynamics simulations of the binding of three eicosanoid substrates to wild type and mutant forms of the enzyme. These simulations were carried out with the aim of dissecting the importance of individual residues in the active site and the roles they might play in dictating the binding and catalytic specificity exhibited by CYP2J2.
The data comprise: (a) a new homology model of CYP2J2, (b) a number of predicted low-energy complexes of CYP2J2 with arachidonic acid, docosahexaenoic acid and eicosapentaenoic acid, produced with molecular docking and (c) a series of molecular dynamics simulations of the wild type and four mutants interacting with arachidonic acid as well as simulations of the wild type interacting with the two other eicosanoid ligands. The simulations may be helpful in identifying the determinants of substrate specificity of this enzyme and in unraveling the role of individual mutations on its function. They may also help guide the generation of mutants with altered substrate preferences.
此处呈现的数据是一项研究的一部分,该研究旨在表征CYP2J2(在人体心血管系统中起主要作用的细胞色素P450酶)对多不饱和脂肪酸代谢的分子机制。这部分内容包括三种类花生酸底物与该酶野生型及突变体形式结合的分子动力学模拟。进行这些模拟的目的是剖析活性位点中各个残基的重要性以及它们在决定CYP2J2所表现出的结合和催化特异性方面可能发挥的作用。
数据包括:(a)CYP2J2的一个新的同源模型,(b)通过分子对接产生的CYP2J2与花生四烯酸、二十二碳六烯酸和二十碳五烯酸的一些预测的低能复合物,以及(c)野生型和四个突变体与花生四烯酸相互作用的一系列分子动力学模拟,以及野生型与其他两种类花生酸配体相互作用的模拟。这些模拟可能有助于确定该酶底物特异性的决定因素,并有助于阐明单个突变对其功能的作用。它们还可能有助于指导产生具有改变的底物偏好的突变体。