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一种必需的细菌细胞壁合成酶 GlmU 的氨基喹唑啉抑制剂具有独特的非蛋白激酶样结合模式。

An aminoquinazoline inhibitor of the essential bacterial cell wall synthetic enzyme GlmU has a unique non-protein-kinase-like binding mode.

机构信息

Discovery Sciences Unit, AstraZeneca R&D Boston, Waltham, MA 02451, USA.

出版信息

Biochem J. 2012 Sep 15;446(3):405-13. doi: 10.1042/BJ20120596.

Abstract

GlmU is a bifunctional enzyme with acetyltransferase and uridyltransferase activities, and is essential for the biosynthesis of the bacterial cell wall. Inhibition results in a loss of cell viability. GlmU is therefore considered a potential target for novel antibacterial agents. A HTS (high-throughput screen) identified a series of aminoquinazolines with submicromolar potency against the uridyltransferase reaction. Biochemical and biophysical characterization showed competition with UTP binding. We determined the crystal structure of a representative aminoquinazoline bound to the Haemophilus influenzae isoenzyme at a resolution of 2.0 Å. The inhibitor occupies part of the UTP site, skirts the outer perimeter of the GlcNAc1-P (N-acetylglucosamine-1-phosphate) pocket and anchors a hydrophobic moiety into a lipophilic pocket. Our SAR (structure-activity relationship) analysis shows that all of these interactions are essential for inhibitory activity in this series. The crystal structure suggests that the compound would block binding of UTP and lock GlmU in an apo-enzyme-like conformation, thus interfering with its enzymatic activity. Our lead generation effort provides ample scope for further optimization of these compounds for antibacterial drug discovery.

摘要

GlmU 是一种具有乙酰基转移酶和尿苷基转移酶活性的双功能酶,是细菌细胞壁生物合成所必需的。抑制 GlmU 会导致细胞活力丧失。因此,GlmU 被认为是新型抗菌药物的潜在靶标。高通量筛选 (HTS) 发现了一系列具有亚微摩尔效力的氨基喹唑啉类化合物,可抑制尿苷基转移酶反应。生化和生物物理特性表明它们与 UTP 结合具有竞争性。我们以 2.0 Å 的分辨率确定了与流感嗜血杆菌同工酶结合的代表性氨基喹唑啉的晶体结构。抑制剂占据 UTP 结合部位的一部分,绕过 GlcNAc1-P(N-乙酰葡萄糖胺-1-磷酸)口袋的外周,并将一个疏水性部分锚定在一个亲脂性口袋中。我们的 SAR(结构-活性关系)分析表明,在这个系列中,所有这些相互作用对于抑制活性都是必不可少的。晶体结构表明,该化合物将阻止 UTP 的结合,并将 GlmU 锁定在类似apo 酶的构象中,从而干扰其酶活性。我们的先导化合物生成工作为进一步优化这些化合物用于抗菌药物发现提供了充分的空间。

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