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异氮杂卓霉素类似物作为鸟嘌呤酶的潜在过渡态类似物抑制剂:各种取代的咪唑并[4,5-e][1,4]二氮杂环庚烷的合成、生化筛选和构效关系研究。

Analogs of iso-azepinomycin as potential transition-state analog inhibitors of guanase: synthesis, biochemical screening, and structure-activity correlations of various selectively substituted imidazo[4,5-e][1,4]diazepines.

机构信息

Laboratory for Drug Design & Synthesis, Department of Chemistry & Biochemistry, University of Maryland, Baltimore County, 1000 Hilltop Circle, Baltimore, MD 21250, USA.

出版信息

Bioorg Med Chem. 2013 Sep 1;21(17):4893-903. doi: 10.1016/j.bmc.2013.06.069. Epub 2013 Jul 11.

Abstract

Guanase is an important enzyme of the purine salvage pathway of nucleic acid metabolism and its inhibition has beneficial implications in viral, bacterial, and cancer therapy. The work described herein is based on a hypothesis that azepinomycin, a heterocyclic natural product and a purported transition state analog inhibitor of guanase, does not represent the true transition state of the enzyme-catalyzed reaction as closely as does iso-azepinomycin, wherein the 6-hydroxy group of azepinomycin has been translocated to the 5-position. Based on this hypothesis, and assuming that iso-azepinomycin would bind to guanase at the same active site as azepinomycin, several analogs of iso-azepinomycin were designed and successfully synthesized in order to gain a preliminary understanding of the hydrophobic and hydrophilic sites surrounding the guanase binding site of the ligand. Specifically, the analogs were designed to explore the hydrophobic pockets, if any, in the vicinity of N1, N3, and N4 nitrogen atoms as well as O(5) oxygen atom of iso-azepinomycin. Biochemical inhibition studies of these analogs were performed using a mammalian guanase. Our results indicate that (1) increasing the hydrophobicity near O(5) results in a negative effect, (2) translocating the hydrophobicity from N3 to N1 also results in decreased inhibition, (3) increasing the hydrophobicity near N3 or N4 produces significant enhancement of inhibition, (4) increasing the hydrophobicity at either N3 or N4 with a simultaneous increase in hydrophobicity at O(5) considerably diminishes any gain in inhibition made by solely enhancing hydrophobicity at N3 or N4, and (5) finally, increasing the hydrophilic character near N3 has also a deleterious effect on inhibition. The most potent compound in the series has a Ki value of 8.0±1.5μM against rabbit liver guanase.

摘要

胍酶是核酸代谢中嘌呤补救途径的重要酶,其抑制作用在病毒、细菌和癌症治疗中具有有益的意义。本文所述的工作基于一个假设,即氮杂并环霉素是一种杂环天然产物,是胍酶的假定过渡态类似物抑制剂,它并不像异氮杂并环霉素那样紧密地代表酶催化反应的过渡态,在异氮杂并环霉素中,氮杂并环霉素的 6-羟基已被转移到 5-位。基于这一假设,并假设异氮杂并环霉素将与胍酶在相同的活性位点结合,设计并成功合成了几种异氮杂并环霉素类似物,以便初步了解配体与胍酶结合位点周围的疏水和亲水位点。具体来说,这些类似物的设计旨在探索异氮杂并环霉素的 N1、N3 和 N4 氮原子以及 O(5)氧原子附近是否存在任何疏水口袋。使用哺乳动物胍酶进行了这些类似物的生化抑制研究。我们的结果表明:(1)增加 O(5)附近的疏水性会产生负面影响;(2)将疏水性从 N3 转移到 N1 也会导致抑制作用降低;(3)增加 N3 或 N4 附近的疏水性会显著增强抑制作用;(4)在 N3 或 N4 增加疏水性的同时在 O(5)增加疏水性,会大大降低仅通过增强 N3 或 N4 的疏水性而获得的任何抑制作用;(5)最后,增加 N3 附近的亲水性也会对抑制作用产生有害影响。该系列中最有效的化合物对兔肝胍酶的 Ki 值为 8.0±1.5μM。

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