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首页> 外文期刊>Biochemistry >N2-hydroxyguanosine 5'-monophosphate is a time-dependent inhibitor of Escherichia coli guanosine monophosphate synthetase.
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N2-hydroxyguanosine 5'-monophosphate is a time-dependent inhibitor of Escherichia coli guanosine monophosphate synthetase.

机译:N2-羟基鸟苷5'-单磷酸酯是大肠杆菌鸟苷单磷酸合成酶的时间依赖性抑制剂。

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In contrast to several other glutamine amidotransferases including asparagine synthetase, cytidine 5'-triphosphate (CTP) synthetase, carbamoyl phosphate synthetase, and phosphoribosyl pyrophosphate (PRPP) amidotransferase, guanosine monophosphate synthetase (GMPS) will not utilize hydroxylamine as an alternative nitrogen source. Instead, the enzyme is inhibited by an unknown mechanism. One untested hypothesis was that hydroxylamine serves as a substrate and intercepts a xanthosine 5'-monophosphate- (XMP-) adenylate intermediate in the enzyme active site. The nucleotide product of this substitution reaction would be N2-hydroxyguanosine 5'-monophosphate (N2-OH-GMP, 2). Here we describe the chemoenzymatic preparation of 2, via the nucleotide 2-fluoroinosine 5'-monophosphate (F-IMP, 5), and characterization of both these compounds as inhibitors of Escherichia coli GMPS. F-IMP was conceived as an electronic mimic of a reactive intermediate in the GMPS reaction but was found to bind weakly to the enzyme (IC50 > 2 mM). In contrast, N2-OH-GMP shows time-dependent inhibition and is competitive with respect to XMP (Ki = 92 nM), representing the first example of a compound that displays these kinetic properties with GMPS. The mechanism of inhibition is proposed to occur via formation of a ternary E.ATP.2 complex, followed by a rate-determining isomerization to a higher affinity complex that has a t1/2 =7.5 min. The contrast in inhibitory activity for 2-substituted purines with GMPS formulates a basis for future inhibitor design. In addition, these results complement recent structural studies of GMPS and implicate the formation of the XMP-adenylate intermediate inducing a probable conformational change that stimulates the hydrolysis of glutamine.
机译:与其他几种谷氨酰胺酰胺转移酶(包括天冬酰胺合成酶,胞苷5'-三磷酸(CTP)合成酶,氨基甲酰基磷酸合成酶和磷酸核糖焦磷酸(PRPP)酰胺转移酶相比,鸟苷单磷酸合成酶(GMPS)将不会利用羟胺作为替代氮源。相反,该酶被未知机制抑制。一个未经检验的假设是羟胺充当底物,并在酶活性位点处截取了黄嘌呤5'-单磷酸-(XMP-)腺苷酸中间体。该取代反应的核苷酸产物将是N2-羟基鸟苷5'-单磷酸酯(N2-OH-GMP,2)。在这里,我们通过核苷酸2-氟肌苷5'-单磷酸酯(F-IMP,5)描述了2的化学酶制剂,并描述了这两种化合物作为大肠杆菌GMPS抑制剂的特性。 F-IMP被认为是GMPS反应中反应性中间体的电子模拟物,但发现与酶的结合较弱(IC50> 2 mM)。相反,N2-OH-GMP显示出时间依赖性抑制,并且相对于XMP(Ki = 92 nM)具有竞争性,代表了具有GMPS显示这些动力学特性的化合物的第一个实例。提出抑制机理是通过形成三元E.ATP.2复合物,然后进行速率确定的异构化为t1 / 2 = 7.5分钟的更高亲和力复合物而发生的。 GMPS对2取代的嘌呤的抑制活性的对比为将来的抑制剂设计奠定了基础。此外,这些结果补充了最近对GMPS的结构研究,并暗示了XMP-腺苷酸中间体的形成,该中间体诱导了可能的构象变化,从而刺激了谷氨酰胺的水解。

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