腺苷琥珀酸合成酶:最新进展。

R B Honzatko, M M Stayton, H J Fromm
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引用次数: 0

摘要

通过对嘌呤核苷酸的生物合成进行战略性控制,并通过gtp依赖的IMP转磷酸化来激活催化过程中氧原子的损失,腺苷琥珀酸合成酶仍然是酶催化的学生们有理由着迷的酶。本文综述了x射线晶体学和酶动力学的平衡应用如何促进了对腺苷琥珀酸合成酶的催化和调控特性的理解。详细的分析证明了6-磷酸化-IMP的形成,这是一种40多年前最初假设的中间体,基于氧-18交换实验,IMP的6位氧被纳入磷酸盐中。在催化过程中稳定6-P-IMP的氨基酸侧链参与的推断也已通过位点定向诱变和对各种动力学参数的突变的检查得到证实。此外,某些调节配体的作用也在原子水平分辨率上被观察到。例如,镁离子和GDP可以引起构象变化,这种变化与所谓的40s环的两种已知构象之一的稳定有关。另一个重要的发现是两个镁离子起着基本的作用:一个与底物GTP具有高亲和力的结合,另一个与共底物天冬氨酸具有较低亲和力的结合。这些结构和动力学研究也为阐明各种抑制剂和潜在重要药理药物与该关键调节酶的作用奠定了基础。最后,对多种生物基因结构和表达的研究现状进行了综述。
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Adenylosuccinate synthetase: recent developments.

By exerting strategic control on purine nucleotide biosynthesis, and by engaging GTP-dependent transphosphorylation of IMP to activate loss of an oxygen atom during catalysis, adenylosuccinate synthetase remains as enzyme that justifiably fascinates students of enzyme catalysis. This review describes how the balanced application of X-ray crystallography and enzyme kinetics has advanced the comprehension of the catalytic and regulatory properties of adenylosuccinate synthetase. Detailed analysis has demonstrated the formation of 6-phosphoryl-IMP, an intermediate originally postulated over 40 years ago on the basis of oxygen-18 exchange experiments showing that position-6 oxygen of IMP becomes incorporated into phosphate. Inferences about the participation of amino acid side-chains that stabilize 6-P-IMP during catalysis have also been confirmed by site-directed mutagenesis and examination of such mutations on various kinetic parameters. Moreover, the action of certain regulatory ligands have also been viewed at atomic level resolution. For example, magnesium ion and GDP can induce conformational changes linked to the stabilization of one of two known conformations of the so-called 40s loop. Another significant finding is that two magnesium ions play fundamental roles: one binding with high affinity to the substrate GTP, and a second binding with lower affinity to the co-substrate aspartate. These structural and kinetic studies have also formed the basis for clarifying the action of various inhibitors and potentially important pharmacologic agents with this key regulatory enzyme. Finally, this review explores the current status of investigations on gene structure and gene expression in a number of organisms.

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