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I 型核苷水解酶底物特异性的结构基础。

Structural basis for substrate specificity in group I nucleoside hydrolases.

作者信息

Iovane Elena, Giabbai Barbara, Muzzolini Laura, Matafora Vittoria, Fornili Arianna, Minici Claudia, Giannese Francesca, Degano Massimo

机构信息

Biocrystallography Unit, DIBIT San Raffaele Scientific Institute, via Olgettina 58, 20132 Milan, Italy.

出版信息

Biochemistry. 2008 Apr 15;47(15):4418-26. doi: 10.1021/bi702448s. Epub 2008 Mar 25.

DOI:10.1021/bi702448s
PMID:18361502
Abstract

Enzymes with nucleoside hydrolase activity (NHs) belonging to homology group I either are markedly specific for pyrimidine nucleoside substrates or hydrolyze with comparable efficiencies the N-glycosidic bond in all common nucleosides. The biochemical and structural basis for these differences in substrate specificity is still unknown. Here we characterize the binding interactions between the slowly hydrolyzed substrate inosine and the Escherichia coli pyrimidine-specific NH YeiK using cryotrapping and X-ray crystallography. Guided by the structural features of the Michaelis complex, we show the synergic effect of two specific point mutations in YeiK that increase the catalytic efficiency toward purine nucleosides to values comparable to those of natural nonspecific NHs. We demonstrate that the integrity of an active-site catalytic triad comprised of two hydroxylated amino acids and one histidine residue is a requirement for the highly efficient hydrolysis of inosine by group I NHs. Instead, cleavage of the YeiK-preferred substrate uridine is not affected by mutations at the same locations, suggesting a different fine chemical mechanism for the hydrolysis of the two nucleoside substrates. Our study provides for the first time direct evidence that distinct subsets of amino acid residues are involved in the hydrolysis of purine or pyrimidine nucleosides in group I NHs.

摘要

属于同源组I的具有核苷水解酶活性(NHs)的酶,要么对嘧啶核苷底物具有显著特异性,要么以相当的效率水解所有常见核苷中的N-糖苷键。这些底物特异性差异的生化和结构基础仍然未知。在这里,我们使用低温捕获和X射线晶体学来表征缓慢水解的底物肌苷与大肠杆菌嘧啶特异性NH YeiK之间的结合相互作用。在米氏复合物的结构特征指导下,我们展示了YeiK中两个特定点突变的协同效应,这些突变将对嘌呤核苷的催化效率提高到与天然非特异性NHs相当的值。我们证明,由两个羟基化氨基酸和一个组氨酸残基组成的活性位点催化三联体的完整性是I组NHs高效水解肌苷的必要条件。相反,YeiK偏好的底物尿苷的裂解不受相同位置突变的影响,这表明两种核苷底物水解的精细化学机制不同。我们的研究首次提供了直接证据,表明不同的氨基酸残基子集参与了I组NHs中嘌呤或嘧啶核苷的水解。

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