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人类 Nit2/ω-酰胺酶催化活性部位的结构见解:动力学测定和分子动力学模拟。

Structural insights into the catalytic active site and activity of human Nit2/ω-amidase: kinetic assay and molecular dynamics simulation.

机构信息

Institute of Biochemistry and Molecular Biology, National Yang-Ming University, Taipei 112, Taiwan.

出版信息

J Biol Chem. 2012 Jul 27;287(31):25715-26. doi: 10.1074/jbc.M111.259119. Epub 2012 Jun 6.

Abstract

Human nitrilase-like protein 2 (hNit2) is a putative tumor suppressor, recently identified as ω-amidase. hNit2/ω-amidase plays a crucial metabolic role by catalyzing the hydrolysis of α-ketoglutaramate (the α-keto analog of glutamine) and α-ketosuccinamate (the α-keto analog of asparagine), yielding α-ketoglutarate and oxaloacetate, respectively. Transamination between glutamine and α-keto-γ-methiolbutyrate closes the methionine salvage pathway. Thus, hNit2/ω-amidase links sulfur metabolism to the tricarboxylic acid cycle. To elucidate the catalytic specificity of hNit2/ω-amidase, we performed molecular dynamics simulations on the wild type enzyme and its mutants to investigate enzyme-substrate interactions. Binding free energies were computed to characterize factors contributing to the substrate specificity. The predictions resulting from these computations were verified by kinetic analyses and mutational studies. The activity of hNit2/ω-amidase was determined with α-ketoglutaramate and succinamate as substrates. We constructed three catalytic triad mutants (E43A, K112A, and C153A) and a mutant with a loop 116-128 deletion to validate the role of key residues and the 116-128 loop region in substrate binding and turnover. The molecular dynamics simulations successfully verified the experimental trends in the binding specificity of hNit2/ω-amidase toward various substrates. Our findings have revealed novel structural insights into the binding of substrates to hNit2/ω-amidase. A catalytic triad and the loop residues 116-128 of hNit2 play an essential role in supporting the stability of the enzyme-substrate complex, resulting in the generation of the catalytic products. These observations are predicted to be of benefit in the design of new inhibitors or activators for research involving cancer and hyperammonemic diseases.

摘要

人源硝基还原酶类似蛋白 2(hNit2)是一种假定的肿瘤抑制因子,最近被鉴定为ω-酰胺酶。hNit2/ω-酰胺酶通过催化α-酮戊二酸(谷氨酰胺的α-酮类似物)和α-酮丁二酸(天冬酰胺的α-酮类似物)的水解,分别生成α-酮戊二酸和草酰乙酸,从而发挥关键的代谢作用。谷氨酰胺与α-酮-γ-甲硫基丁酸之间的转氨基作用封闭了蛋氨酸补救途径。因此,hNit2/ω-酰胺酶将硫代谢与三羧酸循环联系起来。为了阐明 hNit2/ω-酰胺酶的催化特异性,我们对野生型酶及其突变体进行了分子动力学模拟,以研究酶-底物相互作用。计算结合自由能以表征对底物特异性有贡献的因素。这些计算的预测结果通过动力学分析和突变研究得到了验证。用α-酮戊二酸和琥珀酰亚胺作为底物测定 hNit2/ω-酰胺酶的活性。我们构建了三个催化三联体突变体(E43A、K112A 和 C153A)和一个 116-128 环缺失突变体,以验证关键残基和 116-128 环区在底物结合和周转中的作用。分子动力学模拟成功验证了 hNit2/ω-酰胺酶对各种底物结合特异性的实验趋势。我们的研究结果揭示了 hNit2/ω-酰胺酶与底物结合的新结构见解。hNit2 的催化三联体和环残基 116-128 对于支持酶-底物复合物的稳定性起着至关重要的作用,从而产生催化产物。这些观察结果有望为涉及癌症和高氨血症疾病的新抑制剂或激活剂的设计提供帮助。

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