Heinrich Daniel, Diederichsen Ulf, Rudolph Markus Georg
Institut für Organische und Biomolekulare Chemie, Georg-August-Universität Göttingen, Tammannstrasse 2, 37077 Göttingen, Germany.
Chemistry. 2009 Jul 6;15(27):6619-25. doi: 10.1002/chem.200900397.
Orotidine-5'-monophosphate decarboxylase (OMPD) catalyzes the decarboxylation of orotidine-5'-monophosphate (OMP) to uridine-5'-monophosphate (UMP) in an extremely proficient manner. The reaction does not require any cofactors and proceeds by an unknown mechanism. In addition to decarboxylation, OMPD is able to catalyze other reactions. We show that several C6-substituted UMP derivatives undergo hydrolysis or substitution reactions that depend on a lysine residue (Lys314) in the OMPD active site. 6-Cyano-UMP is converted to UMP, and UMP derivatives with good leaving groups inhibit OMPD by a suicide mechanism in which Lys314 covalently binds to the substrate. These non-classical reactivities of human OMPD were characterized by cocrystallization and freeze-trapping experiments with wild-type OMPD and two active-site mutants by using substrate and inhibitor nucleotides. The structures show that the C6-substituents are not coplanar with the pyrimidine ring. The extent of this substrate distortion is a function of the substituent geometry. Structure-based mechanisms for the reaction of 6-substituted UMP derivatives are extracted in accordance with results from mutagenesis, mass spectrometry, and OMPD enzyme activity. The Lys314-based mechanisms explain the chemodiversity of OMPD, and offer a strategy to design mechanism-based inhibitors that could be used for antineoplastic purposes for example.
乳清苷-5'-单磷酸脱羧酶(OMPD)能以极高的效率催化乳清苷-5'-单磷酸(OMP)脱羧生成尿苷-5'-单磷酸(UMP)。该反应不需要任何辅因子,其反应机制尚不清楚。除脱羧反应外,OMPD还能催化其他反应。我们发现,几种C6位取代的UMP衍生物会发生水解或取代反应,这些反应取决于OMPD活性位点中的一个赖氨酸残基(Lys314)。6-氰基-UMP会转化为UMP,带有良好离去基团的UMP衍生物通过自杀机制抑制OMPD,即Lys314与底物共价结合。通过使用底物和抑制剂核苷酸,对野生型OMPD和两个活性位点突变体进行共结晶和冷冻捕获实验,表征了人OMPD的这些非经典反应活性。结构表明,C6位取代基与嘧啶环不共面。这种底物扭曲的程度是取代基几何形状的函数。根据诱变、质谱和OMPD酶活性的结果,提取了6-取代UMP衍生物反应的基于结构的机制。基于Lys314的机制解释了OMPD的化学多样性,并提供了一种设计基于机制的抑制剂的策略,例如可用于抗肿瘤目的。