Skoog M T
J Biol Chem. 1986 Apr 5;261(10):4451-9.
The kinetic alpha-deuterium isotope effect on Vmax/Km for hydrolysis of NMN catalyzed by AMP nucleosidase at saturating concentrations of the allosteric activator MgATP2- is kH/kD = 1.155 +/- 0.012. This value is close to that reported previously for the nonenzymatic hydrolysis of nucleosides of related structure, suggesting that the full intrinsic isotope effect for enzymatic NMN hydrolysis is expressed under these conditions; that is, bond-changing reactions are largely or completely rate-determining and the transition state has marked oxocarbonium ion character. The kinetic alpha-deuterium isotope effect for this reaction is unchanged when deuterium oxide replaces water as solvent, corroborating this conclusion. Furthermore, this isotope effect is independent of pH over the range 6.95-9.25, for which values of Vmax/Km change by a factor of 90, suggesting that the isotope-sensitive and pH-sensitive steps for AMP-nucleosidase-catalyzed NMN hydrolysis are the same. Values of kH/kD for AMP nucleosidase-catalyzed hydrolysis of NMN decrease with decreasing saturation of enzyme with MgATP2- and reach unity when the enzyme is less than half-saturated with this activator. This requires that the rate-determining step changes from cleavage of the covalent C-N bond to one which is isotope-independent. In contrast to the case for NMN hydrolysis, AMP nucleosidase-catalyzed hydrolysis of AMP at saturating concentrations of MgATP2- shows a kinetic alpha-deuterium isotope effect of unity. Thus, covalent bond-changing reactions are largely or completely rate-determining for hydrolysis of a poor substrate, NMN, but make little or no contribution to rate-determining step for hydrolysis of a good substrate, AMP, by maximally activated enzyme. This behavior has several precedents.
在变构激活剂MgATP2-饱和浓度下,AMP核苷酶催化NMN水解反应的Vmax/Km的动力学α-氘同位素效应为kH/kD = 1.155±0.012。该值与先前报道的相关结构核苷非酶水解的值相近,这表明在这些条件下酶促NMN水解的完整内在同位素效应得以体现;也就是说,键变化反应在很大程度上或完全是速率决定因素,且过渡态具有明显的氧鎓离子特征。当用重水替代水作为溶剂时,该反应的动力学α-氘同位素效应不变,这证实了这一结论。此外,在6.95 - 9.25的pH范围内,该同位素效应与pH无关,而在此pH范围内Vmax/Km的值变化了90倍,这表明AMP核苷酶催化NMN水解的同位素敏感步骤和pH敏感步骤是相同的。AMP核苷酶催化NMN水解的kH/kD值随酶被MgATP2-饱和程度的降低而减小,当酶被该激活剂饱和程度低于一半时达到1。这就要求速率决定步骤从共价C-N键的断裂转变为一个与同位素无关的步骤。与NMN水解的情况相反,在MgATP2-饱和浓度下,AMP核苷酶催化AMP水解的动力学α-氘同位素效应为1。因此,对于较差底物NMN的水解,共价键变化反应在很大程度上或完全是速率决定因素,但对于被最大程度激活的酶催化的良好底物AMP的水解,共价键变化反应对速率决定步骤几乎没有贡献。这种行为有几个先例。