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人源和秀丽隐杆线虫胸苷激酶 1 的活性位点突变比较研究。

Comparative active-site mutation study of human and Caenorhabditis elegans thymidine kinase 1.

机构信息

Department of Science, Systems and Models, Roskilde University, Denmark.

出版信息

FEBS J. 2012 May;279(10):1777-87. doi: 10.1111/j.1742-4658.2012.08554.x. Epub 2012 Mar 21.

Abstract

The first step for the intracellular retention of several anticancer or antiviral nucleoside analogues is the addition of a phosphate group catalysed by a deoxyribonucleoside kinase such as thymidine kinase 1 (TK1). Recently, human TK1 (HuTK1) has been crystallized and characterized using different ligands. To improve our understanding of TK1 substrate specificity, we performed a detailed, mutation-based comparative structure-function study of the active sites of two thymidine kinases: HuTK1 and Caenorhabditis elegans TK1 (CeTK1). Specifically, mutations were introduced into the hydrophobic pocket surrounding the substrate base. In CeTK1, some of these mutations led to increased activity with deoxycytidine and deoxyguanosine, two unusual substrates for TK1-like kinases. In HuTK1, mutation of T163 to S resulted in a kinase with a 140-fold lower K(m) for the antiviral nucleoside analogue 3'-azido-3'-deoxythymidine (AZT) compared with the natural substrate thymidine. The crystal structure of the T163S-mutated HuTK1 reveals a less ordered conformation of the ligand thymidine triphosphate compared with the wild-type structure but the cause of the changed specificity towards AZT is not obvious. Based on its highly increased AZT activity relative to thymidine activity this TK1 mutant could be suitable for suicide gene therapy.

摘要

几种抗癌或抗病毒核苷类似物的细胞内保留的第一步是由脱氧核苷激酶(如胸苷激酶 1(TK1))催化添加磷酸基团。最近,已经使用不同的配体对人 TK1(HuTK1)进行了结晶和表征。为了更好地理解 TK1 的底物特异性,我们对两种胸苷激酶的活性位点进行了详细的、基于突变的比较结构功能研究:人 TK1(HuTK1)和秀丽隐杆线虫 TK1(CeTK1)。具体来说,在围绕底物碱基的疏水性口袋中引入了突变。在 CeTK1 中,这些突变中的一些导致脱氧胞苷和脱氧鸟苷的活性增加,脱氧胞苷和脱氧鸟苷是 TK1 样激酶的两个不寻常的底物。在 HuTK1 中,T163 突变为 S 导致激酶对抗病毒核苷类似物 3'-叠氮-3'-去氧胸苷(AZT)的 K(m)值比天然底物胸苷低 140 倍。与野生型结构相比,T163S 突变的 HuTK1 的晶体结构显示出配体三磷酸胸苷的构象较为无序,但导致对 AZT 特异性改变的原因并不明显。基于其相对于胸苷活性的高度增加的 AZT 活性,这种 TK1 突变体可能适合自杀基因治疗。

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