Liu L, Santi D V
Department of Biochemistry and Biophysics, University of California, San Francisco 94143-0448.
Biochemistry. 1993 Sep 14;32(36):9263-7. doi: 10.1021/bi00087a001.
In thymidylate synthase (TS, EC 2.1.1.45), the only side chain in direct hydrogen bonding with the pyrimidine ring of the substrate dUMP is asparagine 229 (N229). In binary and ternary complexes, the carboxamide moiety of the side chain of N229 forms a cyclic hydrogen bond network bridging N-3 and O-4 of the uracil heterocycle. Most of the N229 mutants of TS bind dUMP and catalyze dTMP formation as well as the wild-type enzyme; thus, N229 does not contribute to binding of dUMP. Wild-type TS binds dCMP weakly and does not accept dCMP as a substrate. Mutations at N229 of TS modify the interaction of TS with dCMP. TS N229D and TS N229E catalyze the methylation of dCMP [Liu, L., & Santi, D. V. (1992) Biochemistry 31, 5010-5014]. With the exception of the TS N229Q, most of the N229 mutants bind dCMP as well as or tighter than dUMP and bind dCMP 300-3000-fold tighter than wild-type TS. We conclude that TS discriminates binding of dUMP versus dCMP by a 3-4 kcal mol-1 difference in binding energy by exclusion of dCMP from the active site. We propose that this exclusion is a consequence of untoward interactions between dCMP and the side-chain carboxamide group of the Asn or Gln at position 229 of TS. We speculate that exclusion of cytosine versus uracil by Asn or Gln may account for specificity observed in other protein-pyrimidine interactions.
在胸苷酸合成酶(TS,EC 2.1.1.45)中,与底物dUMP的嘧啶环直接形成氢键的唯一侧链是天冬酰胺229(N229)。在二元和三元复合物中,N229侧链的羧酰胺部分形成一个环状氢键网络,连接尿嘧啶杂环的N-3和O-4。TS的大多数N229突变体与dUMP结合并催化dTMP的形成,其能力与野生型酶相当;因此,N229对dUMP的结合没有贡献。野生型TS与dCMP的结合较弱,并且不接受dCMP作为底物。TS的N229位点发生突变会改变TS与dCMP的相互作用。TS N229D和TS N229E催化dCMP的甲基化[刘,L.,&桑蒂,D. V.(1992年)《生物化学》31,5010 - 5014]。除了TS N229Q外,大多数N229突变体与dCMP的结合能力与dUMP相当或更强,并且与dCMP的结合比野生型TS紧密300 - 3000倍。我们得出结论,TS通过将dCMP排除在活性位点之外,以3 - 4千卡/摩尔的结合能差异来区分dUMP和dCMP的结合。我们提出这种排除是由于dCMP与TS第229位的天冬酰胺或谷氨酰胺的侧链羧酰胺基团之间的不良相互作用所致。我们推测天冬酰胺或谷氨酰胺对胞嘧啶与尿嘧啶的排除可能解释了在其他蛋白质 - 嘧啶相互作用中观察到的特异性。