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人类胸苷酸合成酶的结构分析揭示了一个可能控制活性状态与非活性状态之间构象转换的位点。

Structural analyses of human thymidylate synthase reveal a site that may control conformational switching between active and inactive states.

作者信息

Chen Dan, Jansson Anna, Sim Daniel, Larsson Andreas, Nordlund Pär

机构信息

From the School of Biological Sciences, Lab 07-02 and.

Lab 07-01, Nanyang Technological University, 61 Biopolis Drive (Proteos), Singapore 138673.

出版信息

J Biol Chem. 2017 Aug 11;292(32):13449-13458. doi: 10.1074/jbc.M117.787267. Epub 2017 Jun 20.

Abstract

Thymidylate synthase (TS) is the sole enzyme responsible for biosynthesis of thymidylate (TMP) and is essential for cell proliferation and survival. Inhibition of human TS (hTS) has been extensively investigated for cancer chemotherapy, but several aspects of its activity and regulation are still uncertain. In this study, we performed comprehensive structural and biophysical studies of hTS using crystallography and thermal shift assay and provided the first detailed structural information on the conformational changes induced by ligand binding to the hTS active site. We found that upon binding of the antifolate agents raltitrexed and nolatrexed, the two insert regions in hTS, the functions of which are unclear, undergo positional shifts toward the catalytic center. We investigated the inactive conformation of hTS and found that the two insert regions are also involved in the conformational transition between the active and inactive state of hTS. Moreover, we identified a ligand-binding site in the dimer interface, suggesting that the cavity in the dimer interface could serve as an allosteric site of hTS to regulate the conformational switching between the active and inactive states. On the basis of these findings, we propose a regulatory mechanism of hTS activity that involves allosteric regulation of interactions of hTS with its own mRNA depending on cellular demands for TMP.

摘要

胸苷酸合成酶(TS)是负责胸苷酸(TMP)生物合成的唯一酶,对细胞增殖和存活至关重要。对人TS(hTS)的抑制作用已在癌症化疗中进行了广泛研究,但其活性和调控的几个方面仍不明确。在本研究中,我们使用晶体学和热位移分析对hTS进行了全面的结构和生物物理研究,并提供了关于配体与hTS活性位点结合诱导的构象变化的首个详细结构信息。我们发现,在抗叶酸剂雷替曲塞和诺拉曲塞结合后,hTS中功能尚不清楚的两个插入区域会向催化中心发生位置移动。我们研究了hTS的无活性构象,发现这两个插入区域也参与了hTS活性和无活性状态之间的构象转变。此外,我们在二聚体界面鉴定出一个配体结合位点,表明二聚体界面中的腔可能作为hTS的变构位点来调节活性和无活性状态之间的构象转换。基于这些发现,我们提出了一种hTS活性的调控机制,该机制涉及根据细胞对TMP的需求对hTS与其自身mRNA相互作用进行变构调节。

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