Wang Liya
Department of Molecular Biosciences, Swedish University of Agricultural Sciences, The Biomedical Centre, Uppsala, Sweden.
FEBS J. 2007 Apr;274(8):1983-90. doi: 10.1111/j.1742-4658.2007.05742.x. Epub 2007 Mar 12.
Mollicutes are wall-less bacteria and cause various diseases in humans, animals and plants. They have the smallest genomes with low G + C content and lack many genes of DNA, RNA and protein precursor biosynthesis. Nucleoside diphosphate kinase (NDK), a house-keeping enzyme that plays a critical role in the synthesis of nucleic acids precursors, i.e. NTPs and dNTPs, is absent in all the Mollicutes genomes sequenced to date. Therefore, it would be of interest to know how Mollicutes synthesize dNTPs/NTPs without NDK. To answer this question, nucleoside monophosphate kinases (NMPKs) from Ureaplasma were studied regarding their role in the synthesis of NTPs/dNTPs. In this work, Ureaplasma adenylate kinase, cytidylate kinase, uridylate kinase and thymidylate kinase were cloned and expressed in Escherichia coli. The recombinant enzymes were purified and characterized. These NMPKs are base specific, as indicated by their names, and capable of converting (d)NMPs directly to (d)NTPs. The catalytic rates of (d)NTPs and (d)NDP synthesis by these NMPKs were determined using tritium-labelled (d)NMPs, and the rates for (d)NDP synthesis, in general, were much higher (up to 100-fold) than that of (d)NTP. Equilibrium studies with adenylate kinase suggested that the rates of NTPs/dNTPs synthesis by NMPKs in vivo are probably regulated by the levels of (d)NMPs. These results strongly indicate that NMPKs could substitute the NDK function in vivo.
支原体是无细胞壁的细菌,可在人类、动物和植物中引发各种疾病。它们拥有最小的基因组,G + C含量低,并且缺乏许多DNA、RNA和蛋白质前体生物合成的基因。核苷二磷酸激酶(NDK)是一种看家酶,在核酸前体即NTP和dNTP的合成中起关键作用,在迄今为止测序的所有支原体基因组中均不存在。因此,了解支原体在没有NDK的情况下如何合成dNTPs/NTPs将是很有意义的。为了回答这个问题,对来自脲原体的核苷单磷酸激酶(NMPK)在NTPs/dNTPs合成中的作用进行了研究。在这项工作中,脲原体腺苷酸激酶、胞苷酸激酶、尿苷酸激酶和胸苷酸激酶在大肠杆菌中进行了克隆和表达。对重组酶进行了纯化和表征。这些NMPK如它们的名字所示具有碱基特异性,并且能够将(d)NMPs直接转化为(d)NTPs。使用氚标记的(d)NMPs测定了这些NMPK合成(d)NTPs和(d)NDPs的催化速率,一般来说,(d)NDP合成的速率比(d)NTP的速率高得多(高达100倍)。腺苷酸激酶的平衡研究表明,体内NMPK合成NTPs/dNTPs的速率可能受(d)NMPs水平的调节。这些结果有力地表明,NMPK可以在体内替代NDK的功能。