Veres Z, Neszmélyi A, Szabolcs A, Dénes G
Central Research Institute for Chemistry, Hungarian Academy of Sciences, Budapest.
Eur J Biochem. 1988 Dec 1;178(1):173-81. doi: 10.1111/j.1432-1033.1988.tb14441.x.
Some 3'- and/or 5'-substituted pyrimidine nucleosides, as well as anhydropyrimidine nucleosides, which have no flexibility about the N-glycosidic bond were studied as inhibitors of thymidine phosphorylase and uridine phosphorylase. The conformation of some analogs was also investigated in order to obtain information on substrate binding to the enzyme. The above compounds, including the potential anti-(human immunodeficiency virus) agent, 3'-azido-2',3'-dideoxy-5-methyluridine were not substrates for either thymidine phosphorylase or uridine phosphorylase. (The only exception was arabinofuranosyl-5-ethyluracil, which proved to be a poor substrate for uridine phosphorylase). The phosphorolysis of thymidine by thymidine phosphorylase was slightly or not at all altered by these pyrimidine nucloside analogs. The lowest Ki was obtained in the case of 3'-azido-2',3'-dideoxy-5-methyluridine and the highest in the case of 2'-deoxylyxofuranosyl-5-ethyluracil, when studying the analogs with flexible structure as inhibitors of uridine phosphorylase. The Ki for 2,3'- and 2,5'-anhydro-2'-deoxy-5-ethyluridine was 5-6 orders of magnitude higher than that for 2,2'-anhydro-5-ethyluridine. Competitive inhibition was observed in all cases. For these three molecules computer-aided molecular modelling predicts the following glycosidic torsion angles chi (O4,-C1,-N1-C2): 109 degrees for 2,2'-anhydro-5-ethyluridine, and 78 degrees and 71 degrees for 2,3'- and 2,5'-anhydro-2'-deoxy-5-ethyluridine respectively. These values are corroborated by high-resolution 13C- and 1H-NMR studies. 2'-Deoxy-5-ethyluridine is predicted to have a syn conformation with chi = 46 degrees and delta E about 2.5 kJ/mol over the minimum energy (in anti position, chi = -147 degrees). 1H and 13C data including homonuclear Overhauser enhancements complete the information about the solution conformation. Considering the Ki values obtained, it is likely that substrates of uridine phosphorylase will bind to the enzyme in the same conformation as 2,2'-anhydro-5-ethyluridine. The greater than 30 degrees deviation from the N-glycosidic torsion angle of 2,2'-anhydro-5-ethyluridine results in much higher Ki values.
研究了一些3'-和/或5'-取代的嘧啶核苷以及无N-糖苷键柔性的脱水嘧啶核苷作为胸苷磷酸化酶和尿苷磷酸化酶的抑制剂。还研究了一些类似物的构象,以便获得有关底物与酶结合的信息。上述化合物,包括潜在的抗(人类免疫缺陷病毒)药物3'-叠氮基-2',3'-二脱氧-5-甲基尿苷,既不是胸苷磷酸化酶的底物,也不是尿苷磷酸化酶的底物。(唯一的例外是阿拉伯呋喃糖基-5-乙基尿嘧啶,它被证明是尿苷磷酸化酶的不良底物)。这些嘧啶核苷类似物对胸苷磷酸化酶对胸苷的磷酸解作用影响轻微或根本没有影响。在研究具有柔性结构的类似物作为尿苷磷酸化酶抑制剂时,3'-叠氮基-2',3'-二脱氧-5-甲基尿苷的Ki值最低,而2'-脱氧来苏糖呋喃糖基-5-乙基尿嘧啶的Ki值最高。2,3'-和2,5'-脱水-2'-脱氧-5-乙基尿苷的Ki值比2,2'-脱水-5-乙基尿苷的Ki值高5-6个数量级。在所有情况下均观察到竞争性抑制作用。对于这三个分子,计算机辅助分子建模预测了以下糖苷扭转角χ(O4,-C1,-N1-C2):2,2'-脱水-5-乙基尿苷为109度,2,3'-和2,5'-脱水-2'-脱氧-5-乙基尿苷分别为78度和71度。这些值得到了高分辨率13C和1H-NMR研究的证实。预测2'-脱氧-5-乙基尿苷具有顺式构象,χ = 46度,相对于最低能量(反式位置,χ = -147度)的ΔE约为2.5 kJ/mol。包括同核Overhauser增强在内的1H和13C数据完善了有关溶液构象的信息。考虑到所获得的Ki值,尿苷磷酸化酶的底物很可能会以与2,2'-脱水-5-乙基尿苷相同的构象与酶结合。与2,2'-脱水-5-乙基尿苷的N-糖苷扭转角相差超过30度会导致Ki值高得多。