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Ornithine decarboxylase promotes catalysis by binding the carboxylate in a buried pocket containing phenylalanine 397.

机译:鸟氨酸脱羧酶通过将羧酸酯结合在含有苯丙氨酸397的掩埋袋中来促进催化作用。

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Ornithine decarboxylase (ODC) is a pyridoxal 5'-phosphate (PLP) dependent enzyme that catalyzes the decarboxylation of l-Orn to putrescine, a rate-limiting step in the formation of polyamines. The X-ray crystal structures of ODC, complexed to several ligands, support a model where the substrate is oriented with the carboxyl-leaving group buried on the re face of the PLP cofactor. This binding site is composed of hydrophobic and electron-rich residues, in which Phe-397 is predicted to form a close contact. Mutation of Phe-397 to Ala reduces the steady-state rate of product formation by 150-fold. Moreover, single turnover analysis demonstrates that the rate of the decarboxylation step is decreased by 2100-fold, causing this step to replace product release as the rate-limiting step in the mutant enzyme. These data support the structural prediction that the carboxyl-leaving group is positioned to interact with Phe-397. Multiwavelength stopped-flow analysis of reaction intermediates suggests that a major product of the reaction with the mutant enzyme is pyridoximine 5'-phosphate (PMP), resulting from incorrect protonation of the decarboxylated intermediate at the C4' position. This finding was confirmed by HPLC analysis of the reaction products, demonstrating that Phe-397 also plays a role in maintaining the integrity of the reaction chemistry. The finding that the carboxylate-leaving group is oriented on the buried side of the PLP cofactor suggests that ODC facilitates decarboxylation by destabilizing the charged substrate carboxyl group in favor of an electrostatically more neutral transition state.
机译:鸟氨酸脱羧酶(ODC)是一种依赖吡x醛5'-磷酸(PLP)的酶,可催化1-Orn脱羧为腐胺,这是形成多胺的限速步骤。与多个配体复合的ODC的X射线晶体结构支持一种模型,其中基质的取向是掩埋在PLP辅因子背面的羧基基团。该结合位点由疏水和富电子残基组成,其中Phe-397预计会形成紧密接触。 Phe-397突变为Ala可使产品形成的稳态速率降低150倍。此外,单周转分析表明,脱羧步骤的速率降低了2100倍,从而使该步骤取代了产品释放,成为突变酶中的限速步骤。这些数据支持羧基离去基团定位与Phe-397相互作用的结构预测。反应中间体的多波长停止流分析表明,与突变酶反应的主要产物是吡ido胺5'-磷酸(PMP),这是由于C4'位置的脱羧中间体的质子化不正确所致。 HPLC分析反应产物证实了这一发现,表明Phe-397在维持反应化学完整性方面也起着作用。羧酸酯离去基团位于PLP辅因子的掩埋侧的发现表明,ODC通过使带电荷的底物羧基稳定化而有利于静电更中性的过渡态,从而促进了脱羧。

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