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结核分枝杆菌编码的双功能dCTP脱氨酶:dUTP酶的dTTP抑制机制

Mechanism of dTTP inhibition of the bifunctional dCTP deaminase:dUTPase encoded by Mycobacterium tuberculosis.

作者信息

Helt Signe Smedegaard, Thymark Majbritt, Harris Pernille, Aagaard Claus, Dietrich Jes, Larsen Sine, Willemoes Martin

机构信息

Department of Chemistry, Technical University of Denmark, Kemitorvet 207, DK-2800 Kgs. Lyngby, Denmark.

出版信息

J Mol Biol. 2008 Feb 15;376(2):554-69. doi: 10.1016/j.jmb.2007.11.099. Epub 2007 Dec 5.

Abstract

Recombinant deoxycytidine triphosphate (dCTP) deaminase from Mycobacterium tuberculosis was produced in Escherichia coli and purified. The enzyme proved to be a bifunctional dCTP deaminase:deoxyuridine triphosphatase. As such, the M. tuberculosis enzyme is the second bifunctional enzyme to be characterised and provides evidence for bifunctionality of dCTP deaminase occurring outside the Archaea kingdom. A steady-state kinetic analysis revealed that the affinity for dCTP and deoxyuridine triphosphate as substrates for the synthesis of deoxyuridine monophosphate were very similar, a result that contrasts that obtained previously for the archaean Methanocaldococcus jannaschii enzyme, which showed approximately 10-fold lower affinity for deoxyuridine triphosphate than for dCTP. The crystal structures of the enzyme in complex with the inhibitor, thymidine triphosphate, and the apo form have been solved. Comparison of the two shows that upon binding of thymidine triphosphate, the disordered C-terminal arranges as a lid covering the active site, and the enzyme adapts an inactive conformation as a result of structural changes in the active site. In the inactive conformation dephosphorylation cannot take place due to the absence of a water molecule otherwise hydrogen-bonded to O2 of the alpha-phosphate.

摘要

结核分枝杆菌的重组脱氧胞苷三磷酸(dCTP)脱氨酶在大肠杆菌中产生并纯化。该酶被证明是一种双功能dCTP脱氨酶:脱氧尿苷三磷酸酶。因此,结核分枝杆菌的这种酶是第二种被鉴定的双功能酶,并为古菌界以外存在的dCTP脱氨酶的双功能性提供了证据。稳态动力学分析表明,作为合成脱氧尿苷单磷酸底物的dCTP和脱氧尿苷三磷酸的亲和力非常相似,这一结果与之前对嗜热栖热甲烷球菌酶的研究结果形成对比,后者对脱氧尿苷三磷酸的亲和力比对dCTP低约10倍。该酶与抑制剂三磷酸胸苷复合物以及无辅基形式的晶体结构已被解析。两者的比较表明,在三磷酸胸苷结合后,无序的C末端排列成覆盖活性位点的盖子,并且由于活性位点的结构变化,该酶呈现无活性构象。在无活性构象中,由于不存在与α-磷酸的O2形成氢键的水分子,因此无法发生去磷酸化。

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