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鼠胞质 5'-核苷酸酶 III 的底物特异性和选择性的结构基础。

Structural basis of substrate specificity and selectivity of murine cytosolic 5'-nucleotidase III.

机构信息

Department of Chemistry, Georgian Court University, Lakewood, NJ 08701, USA.

出版信息

J Mol Biol. 2012 Nov 2;423(4):540-54. doi: 10.1016/j.jmb.2012.08.014. Epub 2012 Aug 25.

DOI:10.1016/j.jmb.2012.08.014
PMID:22925580
Abstract

Cytosolic 5'-nucleotidase III (cN-III) is responsible for selective degradation of pyrimidine 5'-monoribonucleotides during maturation of reticulocytes to erythrocytes. The lack of this enzymatic activity due to genetic aberrations or lead poisoning results in a mild to moderate nonspherocytic hemolytic anemia. In affected individuals, pyrimidine nucleotides as well as their precursor polymers and their off-path metabolites accumulate in erythrocytes, interfering with their proper function in ways that are not yet fully understood. This report describes the first X-ray structure of a catalytically inactivated variant of murine cN-III with a natural substrate, uridine 5'-monophosphate, in the active site at 1.74Å resolution. The structure captures in an atomic detail the closed conformation that cN-III adopts upon substrate binding. Structure and sequence analysis coupled with enzymatic characterization of several mutants confirmed that the aromatic ring of a nitrogenous base of substrate nucleotide is stabilized by parallel π-stacking interactions with conserved aromatic rings of Trp113 and His68. The nitrogenous base is further stabilized by T-shaped stacking with the conserved aromatic ring of Tyr114, as well as by polar contacts with side chains of Thr66 and Ser117. Two water molecules help to stabilize the nucleotide binding by bridging it to protein residues Asp72 and His68 via hydrogen bonds. Finally, fully conserved Glu96 is responsible for recognition of ribose ring via two hydrogen bonds. The presented substrate complex structure elucidates how cN-III achieves specificity for pyrimidine 5'-nucleotides and how it selects against purine 5'-nucleotides.

摘要

细胞质 5'-核苷酸酶 III(cN-III)负责网织红细胞成熟为红细胞过程中嘧啶 5'-单核苷酸的选择性降解。由于遗传异常或铅中毒导致这种酶活性缺失,会导致轻度至中度非球形红细胞溶血性贫血。在受影响的个体中,嘧啶核苷酸及其前体聚合物及其旁路代谢物在红细胞中积累,以尚未完全理解的方式干扰其正常功能。本报告描述了天然底物尿嘧啶 5'-单磷酸在活性位点以 1.74Å 分辨率与鼠 cN-III 的催化失活变体的第一个 X 射线结构。该结构以原子细节捕捉到 cN-III 结合底物后采取的封闭构象。结构和序列分析以及对几种突变体的酶特性分析证实,底物核苷酸的含氮碱基的芳环通过与保守的色氨酸 113 和组氨酸 68 的平行π-堆积相互作用得到稳定。氮碱基通过与保守的色氨酸 114 的 T 型堆积以及与苏氨酸 66 和丝氨酸 117 的侧链的极性接触得到进一步稳定。两个水分子通过氢键将其与天冬氨酸 72 和组氨酸 68 桥接,有助于稳定核苷酸结合。最后,完全保守的谷氨酸 96 通过两个氢键负责识别核糖环。所提出的底物复合物结构阐明了 cN-III 如何实现嘧啶 5'-核苷酸的特异性以及如何选择对抗嘌呤 5'-核苷酸。

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J Biol Chem. 2013 Jan 25;288(4):2441-51. doi: 10.1074/jbc.M112.426700. Epub 2012 Dec 5.