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变构调节变形链球菌 2'-脱氧胞苷脱氨酶的机制。

Mechanism of the allosteric regulation of Streptococcus mutans 2'-deoxycytidylate deaminase.

机构信息

Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China.

Key Laboratory of Molecular Biology on Infectious Disease, Chongqing Medical University, YiXueYuanlu-1, Chongqing, People's Republic of China.

出版信息

Acta Crystallogr D Struct Biol. 2016 Jul;72(Pt 7):883-91. doi: 10.1107/S2059798316009153. Epub 2016 Jun 23.

Abstract

In cells, dUMP is the intermediate precursor of dTTP in its synthesis during deoxynucleotide metabolism. In Gram-positive bacteria and eukaryotes, zinc-dependent deoxycytidylate deaminases (dCDs) catalyze the conversion of dCMP to dUMP. The activity of dCD is allosterically activated by dCTP and inhibited by dTTP. Here, the crystal structure of Streptococcus mutans dCD (SmdCD) complexed with dTTP is presented at 2.35 Å resolution, thereby solving the first pair of activator-bound and inhibitor-bound structures from the same species to provide a more definitive description of the allosteric mechanism. In contrast to the dTTP-bound dCD from the bacteriophage S-TIM5 (S-TIM5-dCD), dTTP-bound SmdCD adopts an inactive conformation similar to the apo form. A structural comparison suggests that the distinct orientations of the triphosphate group in S-TIM5-dCD and SmdCD are a result of the varying protein binding environment. In addition, calorimetric data establish that the modulators bound to dCD can be mutually competitively replaced. The results reveal the mechanism underlying its regulator-specific activity and might greatly enhance the understanding of the allosteric regulation of other dCDs.

摘要

在细胞中,dUMP 是脱氧核苷酸代谢过程中 dTTP 合成的中间前体。在革兰氏阳性菌和真核生物中,锌依赖的脱氧胞苷脱氨酶(dCD)催化 dCMP 向 dUMP 的转化。dCD 的活性被 dCTP 变构激活,并被 dTTP 抑制。本文报道了链霉菌 dCD(SmdCD)与 dTTP 复合物的晶体结构,分辨率为 2.35 Å,从而解决了来自同一物种的第一对激活剂结合和抑制剂结合结构,为变构机制提供了更明确的描述。与噬菌体 S-TIM5 的 dTTP 结合的 dCD(S-TIM5-dCD)不同,dTTP 结合的 SmdCD 采用类似于无配体形式的无活性构象。结构比较表明,S-TIM5-dCD 和 SmdCD 中三磷酸基团的不同取向是由于蛋白质结合环境的变化。此外,量热数据表明,与 dCD 结合的调节剂可以相互竞争性取代。这些结果揭示了其调节剂特异性活性的机制,并可能极大地提高对其他 dCD 变构调节的理解。

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