Newby Zachary, Lee Tom T, Morse Richard J, Liu Yaoquan, Liu Lu, Venkatraman Prasanna, Santi Daniel V, Finer-Moore Janet S, Stroud Robert M
University of California at San Francisco, San Francisco, California 94143-0448, USA.
Biochemistry. 2006 Jun 20;45(24):7415-28. doi: 10.1021/bi060152s.
The enzyme thymidylate synthase (TS) catalyzes the reductive methylation of 2'-deoxyuridine 5'-monophosphate (dUMP) to 2'-deoxythymidine 5'-monophosphate. Using kinetic and X-ray crystallography experiments, we have examined the role of the highly conserved Tyr-261 in the catalytic mechanism of TS. While Tyr-261 is distant from the site of methyl transfer, mutants at this position show a marked decrease in enzymatic activity. Given that Tyr-261 forms a hydrogen bond with the dUMP 3'-O, we hypothesized that this interaction would be important for substrate binding, orientation, and specificity. Our results, surprisingly, show that Tyr-261 contributes little to these features of the mechanism of TS. However, the residue is part of the structural core of closed ternary complexes of TS, and conservation of the size and shape of the Tyr side chain is essential for maintaining wild-type values of kcat/Km. Moderate increases in Km values for both the substrate and cofactor upon mutation of Tyr-261 arise mainly from destabilization of the active conformation of a loop containing a dUMP-binding arginine. Besides binding dUMP, this loop has a key role in stabilizing the closed conformation of the enzyme and in shielding the active site from the bulk solvent during catalysis. Changes to atomic vibrations in crystals of a ternary complex of Escherichia coli Tyr261Trp are associated with a greater than 2000-fold drop in kcat/Km. These results underline the important contribution of dynamics to catalysis in TS.
胸苷酸合成酶(TS)催化2'-脱氧尿苷5'-单磷酸(dUMP)还原甲基化生成2'-脱氧胸苷5'-单磷酸。我们通过动力学和X射线晶体学实验,研究了高度保守的酪氨酸-261(Tyr-261)在TS催化机制中的作用。虽然Tyr-261距离甲基转移位点较远,但该位置的突变体酶活性显著降低。鉴于Tyr-261与dUMP的3'-O形成氢键,我们推测这种相互作用对底物结合、定向和特异性很重要。令人惊讶的是,我们的结果表明,Tyr-261对TS催化机制的这些特征贡献不大。然而,该残基是TS封闭三元复合物结构核心的一部分,酪氨酸侧链大小和形状的保守性对于维持kcat/Km的野生型值至关重要。Tyr-261突变后,底物和辅因子的Km值适度增加,主要源于含有dUMP结合精氨酸的环的活性构象不稳定。除了结合dUMP外,该环在稳定酶的封闭构象以及在催化过程中保护活性位点免受大量溶剂影响方面起关键作用。大肠杆菌Tyr261Trp三元复合物晶体中原子振动的变化与kcat/Km下降超过2000倍有关。这些结果强调了动力学对TS催化的重要贡献。