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在 3-去氮尿苷的 C3 位引入一个氟原子,将其代谢拮抗活性从 CTP 合成酶的抑制作用转变为乳清酸核苷酸脱羧酶的抑制作用,这是从头嘧啶核苷酸生物合成途径中的早期事件。

Introduction of a fluorine atom at C3 of 3-deazauridine shifts its antimetabolic activity from inhibition of CTP synthetase to inhibition of orotidylate decarboxylase, an early event in the de novo pyrimidine nucleotide biosynthesis pathway.

机构信息

Rega Institute for Medical Research, Katholieke Universiteit Leuven, B-3000 Leuven, Belgium.

出版信息

J Biol Chem. 2012 Aug 31;287(36):30444-54. doi: 10.1074/jbc.M112.378091. Epub 2012 Jun 24.

Abstract

The antimetabolite prodrug 3-deazauridine (3DUrd) inhibits CTP synthetase upon intracellular conversion to its triphosphate, which selectively depletes the intracellular CTP pools. Introduction of a fluorine atom at C3 of 3DUrd shifts its antimetabolic action to inhibition of the orotidylate decarboxylase (ODC) activity of the UMP synthase enzyme complex that catalyzes an early event in pyrimidine nucleotide biosynthesis. This results in concomitant depletion of the intracellular UTP and CTP pools. The new prodrug (designated 3F-3DUrd) exerts its inhibitory activity because its monophosphate is not further converted intracellularly to its triphosphate derivative to a detectable extent. Combinations with hypoxanthine and adenine markedly potentiate the cytostatic activity of 3F-3DUrd. This is likely because of depletion of 5-phosphoribosyl-1-pyrophosphate (consumed in the hypoxanthine phosphoribosyl transferase/adenine phosphoribosyl transferase reaction) and subsequent slowing of the 5-phosphoribosyl-1-pyrophosphate-dependent orotate phosphoribosyl transferase reaction, which depletes orotidylate, the substrate for ODC. Further efficient anabolism by nucleotide kinases is compromised apparently because of the decrease in pK(a) brought about by the fluorine atom, which affects the ionization state of the new prodrug. The 3F-3DUrd monophosphate exhibits new inhibitory properties against a different enzyme of the pyrimidine nucleotide metabolism, namely the ODC activity of UMP synthase.

摘要

代谢拮抗前体药物 3-去氮尿苷(3DUrd)在细胞内转化为三磷酸后可抑制 CTP 合成酶,从而选择性耗尽细胞内 CTP 池。在 3DUrd 的 C3 位引入氟原子可将其代谢拮抗作用转移到抑制 UMP 合酶酶复合物的乳清酸脱羧酶(ODC)活性,该酶催化嘧啶核苷酸生物合成的早期事件。这导致细胞内 UTP 和 CTP 池同时耗尽。新的前体药物(命名为 3F-3DUrd)发挥其抑制活性,因为其单磷酸酯在细胞内不会进一步转化为其三磷酸酯衍生物,达到可检测的程度。与次黄嘌呤和腺嘌呤的组合可显著增强 3F-3DUrd 的细胞抑制活性。这可能是因为 5-磷酸核糖-1-焦磷酸(在次黄嘌呤磷酸核糖转移酶/腺嘌呤磷酸核糖转移酶反应中消耗)被消耗,随后 5-磷酸核糖-1-焦磷酸依赖性乳清酸磷酸核糖转移酶反应减慢,导致 ODC 的底物乳清酸盐耗尽。核苷酸激酶的进一步有效合成代谢显然受到损害,因为氟原子降低了 pK(a),这影响了新前体药物的电离状态。3F-3DUrd 单磷酸对嘧啶核苷酸代谢的另一种酶,即 UMP 合酶的 ODC 活性,表现出新的抑制特性。

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