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本文引用的文献

1
Histidine triad-like motif of the rotavirus NSP2 octamer mediates both RTPase and NTPase activities.轮状病毒NSP2八聚体的组氨酸三联体样基序介导RTPase和NTPase活性。
J Mol Biol. 2006 Sep 22;362(3):539-54. doi: 10.1016/j.jmb.2006.07.050. Epub 2006 Jul 29.
2
Rotavirus genome replication and morphogenesis: role of the viroplasm.轮状病毒基因组复制与形态发生:病毒工厂的作用
Curr Top Microbiol Immunol. 2006;309:169-87. doi: 10.1007/3-540-30773-7_6.
3
Structure-function analysis of rotavirus NSP2 octamer by using a novel complementation system.利用新型互补系统对轮状病毒NSP2八聚体进行结构-功能分析。
J Virol. 2006 Aug;80(16):7984-94. doi: 10.1128/JVI.00172-06.
4
Aprataxin forms a discrete branch in the HIT (histidine triad) superfamily of proteins with both DNA/RNA binding and nucleotide hydrolase activities.脱嘌呤嘧啶核酸内切酶在具有DNA/RNA结合和核苷酸水解酶活性的组氨酸三联体(HIT)超家族蛋白质中形成一个独立的分支。
J Biol Chem. 2006 May 19;281(20):13939-48. doi: 10.1074/jbc.M507946200. Epub 2006 Mar 16.
5
Helicase-catalysed translocation and strand separation.解旋酶催化的易位和链分离。
Biochem Soc Trans. 2005 Dec;33(Pt 6):1474-8. doi: 10.1042/BST0331474.
6
Modulation of the nucleoside triphosphatase/RNA helicase and 5'-RNA triphosphatase activities of Dengue virus type 2 nonstructural protein 3 (NS3) by interaction with NS5, the RNA-dependent RNA polymerase.登革2型病毒非结构蛋白3(NS3)通过与RNA依赖性RNA聚合酶NS5相互作用对核苷三磷酸酶/RNA解旋酶和5'-RNA三磷酸酶活性的调节
J Biol Chem. 2005 Jul 22;280(29):27412-9. doi: 10.1074/jbc.M501393200. Epub 2005 May 24.
7
Likelihood-enhanced fast translation functions.似然增强快速翻译功能。
Acta Crystallogr D Biol Crystallogr. 2005 Apr;61(Pt 4):458-64. doi: 10.1107/S0907444905001617. Epub 2005 Mar 24.
8
Rotavirus replication: plus-sense templates for double-stranded RNA synthesis are made in viroplasms.轮状病毒复制:双链RNA合成的正链模板在病毒工厂中产生。
J Virol. 2004 Jul;78(14):7763-74. doi: 10.1128/JVI.78.14.7763-7774.2004.
9
Prokaryotic and eukaryotic DNA helicases. Essential molecular motor proteins for cellular machinery.原核生物和真核生物DNA解旋酶。细胞机制中必不可少的分子马达蛋白。
Eur J Biochem. 2004 May;271(10):1835-48. doi: 10.1111/j.1432-1033.2004.04093.x.
10
Characterization of rotavirus NSP2/NSP5 interactions and the dynamics of viroplasm formation.轮状病毒NSP2/NSP5相互作用的表征及病毒工厂形成的动力学
J Gen Virol. 2004 Mar;85(Pt 3):625-634. doi: 10.1099/vir.0.19611-0.

轮状病毒NSP2与核苷酸的晶体学和生化分析揭示了一种核苷二磷酸激酶样活性。

Crystallographic and biochemical analysis of rotavirus NSP2 with nucleotides reveals a nucleoside diphosphate kinase-like activity.

作者信息

Kumar Mukesh, Jayaram Hariharan, Vasquez-Del Carpio Rodrigo, Jiang Xiaofang, Taraporewala Zenobia F, Jacobson Raymond H, Patton John T, Prasad B V Venkataram

机构信息

Verna and Marrs McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, One Baylor Plaza, Houston, TX 77030, USA.

出版信息

J Virol. 2007 Nov;81(22):12272-84. doi: 10.1128/JVI.00984-07. Epub 2007 Sep 5.

DOI:10.1128/JVI.00984-07
PMID:17804496
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2168982/
Abstract

Rotavirus, the major pathogen of infantile gastroenteritis, carries a nonstructural protein, NSP2, essential for viroplasm formation and genome replication/packaging. In addition to RNA-binding and helix-destabilizing properties, NSP2 exhibits nucleoside triphosphatase activity. A conserved histidine (H225) functions as the catalytic residue for this enzymatic activity, and mutation of this residue abrogates genomic double-stranded RNA synthesis without affecting viroplasm formation. To understand the structural basis of the phosphatase activity of NSP2, we performed crystallographic analyses of native NSP2 and a functionally defective H225A mutant in the presence of nucleotides. These studies showed that nucleotides bind inside a cleft between the two domains of NSP2 in a region that exhibits structural similarity to ubiquitous cellular HIT (histidine triad) proteins. Only minor conformational alterations were observed in the cleft upon nucleotide binding and hydrolysis. This hydrolysis involved the formation of a stable phosphohistidine intermediate. These observations, reminiscent of cellular nucleoside diphosphate (NDP) kinases, prompted us to investigate whether NSP2 exhibits phosphoryl-transfer activity. Bioluminometric assay showed that NSP2 exhibits an NDP kinase-like activity that transfers the bound phosphate to NDPs. However, NSP2 is distinct from the highly conserved cellular NDP kinases in both its structure and catalytic mechanism, thus making NSP2 a potential target for antiviral drug design. With structural similarities to HIT proteins, which are not known to exhibit NDP kinase activity, NSP2 represents a unique example among structure-activity relationships. The newly observed phosphoryl-transfer activity of NSP2 may be utilized for homeostasis of nucleotide pools in viroplasms during genome replication.

摘要

轮状病毒是婴幼儿肠胃炎的主要病原体,它携带一种非结构蛋白NSP2,该蛋白对病毒包涵体的形成以及基因组复制/包装至关重要。除了具有RNA结合和螺旋不稳定特性外,NSP2还具有核苷三磷酸酶活性。一个保守的组氨酸(H225)作为这种酶活性的催化残基,该残基的突变会消除基因组双链RNA的合成,而不影响病毒包涵体的形成。为了了解NSP2磷酸酶活性的结构基础,我们对天然NSP2和功能缺陷型H225A突变体在核苷酸存在的情况下进行了晶体学分析。这些研究表明,核苷酸结合在NSP2两个结构域之间的裂隙内,该区域与普遍存在的细胞HIT(组氨酸三联体)蛋白具有结构相似性。在核苷酸结合和水解时,裂隙中仅观察到微小的构象变化。这种水解涉及形成稳定的磷酸组氨酸中间体。这些观察结果让人联想到细胞核苷二磷酸(NDP)激酶,促使我们研究NSP2是否具有磷酸转移活性。生物发光测定表明,NSP2具有类似NDP激酶的活性,可将结合的磷酸转移至NDP。然而,NSP2在结构和催化机制上均与高度保守的细胞NDP激酶不同,因此使NSP2成为抗病毒药物设计的潜在靶点。NSP2与未知具有NDP激酶活性的HIT蛋白具有结构相似性,在结构-活性关系中代表了一个独特的例子。新观察到的NSP2磷酸转移活性可能在基因组复制过程中用于病毒包涵体中核苷酸池的稳态。