Gondeau C, Chaloin L, Lallemand P, Roy B, Périgaud C, Barman T, Varga A, Vas M, Lionne C, Arold S T
Centre d'études d'agents Pathogènes et Biotechnologies pour la Santé, UMR 5236, CNRS-Universités Montpellier 1 et 2, Institut de Biologie, 4 bd Henri IV, CS69033, 34965 Montpellier cedex 2, France.
Nucleic Acids Res. 2008 Jun;36(11):3620-9. doi: 10.1093/nar/gkn212. Epub 2008 May 7.
Non-natural L-nucleoside analogues are increasingly used as therapeutic agents to treat cancer and viral infections. To be active, L-nucleosides need to be phosphorylated to their respective triphosphate metabolites. This stepwise phosphorylation relies on human enzymes capable of processing L-nucleoside enantiomers. We used crystallographic analysis to reveal the molecular basis for the low enantioselectivity and the broad specificity of human 3-phosphoglycerate kinase (hPGK), an enzyme responsible for the last step of phosphorylation of many nucleotide derivatives. Based on structures of hPGK in the absence of nucleotides, and bound to L and d forms of MgADP and MgCDP, we show that a non-specific hydrophobic clamp to the nucleotide base, as well as a water-filled cavity behind it, allows high flexibility in the interaction between PGK and the bases. This, combined with the dispensability of hydrogen bonds to the sugar moiety, and ionic interactions with the phosphate groups, results in the positioning of different nucleotides so to expose their diphosphate group in a position competent for catalysis. Since the third phosphorylation step is often rate limiting, our results are expected to alleviate in silico tailoring of L-type prodrugs to assure their efficient metabolic processing.
非天然L-核苷类似物越来越多地被用作治疗癌症和病毒感染的治疗剂。为了发挥活性,L-核苷需要被磷酸化为各自的三磷酸代谢物。这一步骤的磷酸化依赖于能够处理L-核苷对映体的人类酶。我们利用晶体学分析揭示了人类3-磷酸甘油酸激酶(hPGK)对映选择性低和特异性广泛的分子基础,hPGK是负责许多核苷酸衍生物磷酸化最后一步的酶。基于hPGK在无核苷酸状态下以及与MgADP和MgCDP的L型和D型结合的结构,我们表明,对核苷酸碱基的非特异性疏水钳位以及其后方的一个充满水的腔,使得PGK与碱基之间的相互作用具有高度灵活性。这与对糖部分氢键的可替代性以及与磷酸基团的离子相互作用相结合,导致不同核苷酸的定位,从而使其二磷酸基团暴露在适合催化的位置。由于第三步磷酸化通常是限速步骤,我们的结果有望减轻L型前药的计算机辅助设计,以确保其有效的代谢处理。