Gene duplications and losses among vertebrate deoxyribonucleoside kinases of the non-TK1 Family

Zeeshan Mutahir, L. S. Christiansen, A. Clausen, M. Berchtold, Z. Gojković, B. Munch‐Petersen, W. Knecht, J. Piškur
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Abstract

ABSTRACT Deoxyribonucleoside kinases (dNKs) salvage deoxyribonucleosides (dNs) and catalyze the rate limiting step of this salvage pathway by converting dNs into corresponding monophosphate forms. These enzymes serve as an excellent model to study duplicated genes and their evolutionary history. So far, among vertebrates only four mammalian dNKs have been studied for their substrate specificity and kinetic properties. However, some vertebrates, such as fish, frogs, and birds, apparently possess a duplicated homolog of deoxycytidine kinase (dCK). In this study, we characterized a family of dCK/deoxyguanosine kinase (dGK)-like enzymes from a frog Xenopus laevis and a bird Gallus gallus. We showed that X. laevis has a duplicated dCK gene and a dGK gene, whereas G. gallus has a duplicated dCK gene but has lost the dGK gene. We cloned, expressed, purified, and subsequently determined the kinetic parameters of the dCK/dGK enzymes encoded by these genes. The two dCK enzymes in G. gallus have broader substrate specificity than their human or X. laevis counterparts. Additionally, the duplicated dCK enzyme in G. gallus might have become mitochondria. Based on our study we postulate that changing and adapting substrate specificities and subcellular localization are likely the drivers behind the evolution of vertebrate dNKs.
脊椎动物非tk1家族脱氧核糖核苷激酶的基因复制和丢失
脱氧核糖核苷激酶(dNKs)挽救脱氧核糖核苷(dNs),并通过将dNs转化为相应的单磷酸形式来催化这一挽救途径的限速步骤。这些酶是研究复制基因及其进化史的一个很好的模型。到目前为止,在脊椎动物中,只有四种哺乳动物的dnk被研究了底物特异性和动力学性质。然而,一些脊椎动物,如鱼、青蛙和鸟类,显然具有重复的脱氧胞苷激酶(dCK)同源物。在这项研究中,我们鉴定了一个dCK/脱氧鸟苷激酶(dGK)样酶家族,这些酶来自青蛙非洲爪蟾和鸟鸡。我们发现,X. laevis有一个重复的dCK基因和dGK基因,而G. gallus有一个重复的dCK基因,但dGK基因缺失。我们克隆、表达、纯化并随后确定了这些基因编码的dCK/dGK酶的动力学参数。这两种dCK酶在鸡的底物特异性比他们的人或X. laevis对应物更广泛。另外,在鸡体内复制的dCK酶可能已经变成了线粒体。根据我们的研究,我们假设改变和适应底物特异性和亚细胞定位可能是脊椎动物dnk进化背后的驱动因素。
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