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首页> 外文期刊>Biochemistry >Crystal Structures of Human and Murine Deoxyribonucleotidases: Insights into Recognition of Substrates and Nucleotide Analogues
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Crystal Structures of Human and Murine Deoxyribonucleotidases: Insights into Recognition of Substrates and Nucleotide Analogues

机译:人和鼠的脱氧核糖核苷酸酶的晶体结构:底物和核苷酸类似物识别的见解。

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摘要

Cytosolic 5'(3')-deoxyribonucleotidase (cdN) and mitochondrial 5'(3')-deoxyribonucleotidase (mdN) catalyze the dephosphorylation of deoxyribonucleoside monophosphates and regulate dTTP formation in cytosol and mitochondria, protecting DNA replication from imbalanced precursor pools. They can also interfere with the phosphorylation-dependent activation of nucleoside analogues used in anticancer and antiviral treatment. To understand the relatively narrow substrate specificity of these two enzymes and their ability to use nucleotide analogues as substrates, we determined the crystal structures of human cdN in complex with deoxyuridine, murine cdN in complex with dUMP and dGMP, and human mdN in complex with the nucleotide analogues AZTMP and BVdUMP. Our results show that the active site residues Leu45 and Tyr65 in cdN form a more favorable binding surface for purine nucleotides than the corresponding Trp75 and Trp76 in mdN, explaining why cdN has higher activity for purine nucleotides than does mdN. The molecular interactions of mdN with AZTMP and BVdUMP indicate why these nucleotide analogues are poorer substrates as compared with the physiological substrate, and they provide a structural rationale for the design of drugs that are less prone to inactivation by the deoxyribonucleotidases. We suggest that introduction of substituents in the 3'-position may result in nucleoside analogues with increased resistance to dephosphorylation.
机译:胞质5'(3')-脱氧核糖核苷酸酶(cdN)和线粒体5'(3')-脱氧核糖核苷酸酶(mdN)催化脱氧核糖核苷单磷酸的去磷酸化并调节dTTP在细胞质和线粒体中的形成,从而保护DNA复制免受不平衡的前体池的影响。它们还可以干扰抗癌和抗病毒治疗中所用核苷类似物的磷酸化依赖性活化。为了了解这两种酶相对较窄的底物特异性及其使用核苷酸类似物作为底物的能力,我们确定了与脱氧尿苷复合的人cdN的晶体结构,与dUMP和dGMP复合的鼠类cdN和与dUMP复合的人mdN的晶体结构。核苷酸类似物AZTMP和BVdUMP。我们的结果表明,与mdN中相应的Trp75和Trp76相比,cdN中的活性位点残基Leu45和Tyr65对嘌呤核苷酸形成了更有利的结合表面,从而解释了为什么cdN对嘌呤核苷酸的活性高于mdN。 mdN与AZTMP和BVdUMP的分子相互作用表明了为什么这些核苷酸类似物与生理底物相比是较差的底物,并且它们为设计不易被脱氧核糖核苷酸酶灭活的药物提供了结构原理。我们建议在3'-位引入取代基可能会导致核苷类似物具有更高的去磷酸化抗性。

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