Swanson T, Brooks H B, Osterman A L, O'Leary M H, Phillips M A
Department of Pharmacology, University of Texas Southwestern Medical Center, Dallas 75235-9041, USA.
Biochemistry. 1998 Oct 20;37(42):14943-7. doi: 10.1021/bi981154i.
Carbon isotope effect studies were undertaken with the wild-type pyridoxal 5'-phosphate (PLP)-dependent enzyme ornithine decarboxylase (ODC) from Trypanosoma brucei and with several active site mutants of the enzyme. For the decarboxylation of the optimal substrate, L-ornithine, by wild-type ODC, the observed carbon isotope effect (k12/k13) is 1.033 at pH 7.3. In comparison to the expected intrinsic isotope effect (k12/k13 = 1.06) for decarboxylation, this value suggests that both the rate of decarboxylation and the rate of Schiff base interchange with L-ornithine are partially rate-limiting for the reaction steps up to decarboxylation. In contrast, with the alternate substrate L-Lys, which shows lower catalytic efficiency, the carbon isotope effect increased to 1.063, demonstrating that decarboxylation has become the rate-limiting step. For the mutant enzymes, E274A ODC and C360A ODC, with L-ornithine as substrate the carbon isotope effect also approaches the intrinsic limit. Glu-274 was previously demonstrated to play a direct role in carbanion stabilization, and thus the large carbon isotope effect (k12/k13 = 1.055) is consistent with an impaired rate of decarboxylation compared to wild-type ODC. In contrast, for K69A ODC, the isotope effect is almost entirely suppressed, suggesting that Schiff-base formation (which now must occur from enzyme-bound PLP, rather than from an enzyme-bound PLP-Schiff base) has become rate-determining.
对来自布氏锥虫的野生型依赖磷酸吡哆醛(PLP)的鸟氨酸脱羧酶(ODC)以及该酶的几个活性位点突变体进行了碳同位素效应研究。对于野生型ODC催化最佳底物L-鸟氨酸的脱羧反应,在pH 7.3时观察到的碳同位素效应(k12/k13)为1.033。与脱羧反应预期的内在同位素效应(k12/k13 = 1.06)相比,该值表明脱羧速率和与L-鸟氨酸的席夫碱交换速率对于直至脱羧的反应步骤均部分限速。相比之下,对于催化效率较低的替代底物L-赖氨酸,碳同位素效应增加到1.063,表明脱羧已成为限速步骤。对于突变酶E274A ODC和C360A ODC,以L-鸟氨酸为底物时,碳同位素效应也接近内在极限。先前已证明Glu-274在碳负离子稳定中起直接作用,因此与野生型ODC相比,较大的碳同位素效应(k12/k13 = 1.055)与脱羧速率受损一致。相反,对于K69A ODC,同位素效应几乎完全被抑制,这表明席夫碱形成(现在必须由酶结合的PLP而非酶结合的PLP-席夫碱发生)已成为速率决定因素。