Purich D L
Department of Biochemistry and Molecular Biology, University of Florida College of Medicine, Gainesville 32610, USA.
Adv Enzymol Relat Areas Mol Biol. 1998;72:9-42. doi: 10.1002/9780470123188.ch2.
Meister's proposal of a gamma-glutamyl-P intermediate in the glutamine synthetase reaction set the scene for understanding how the stepwise activation of the carboxyl group greatly increased its susceptibility toward nucleophilic attack and amide bond synthesis. Topics covered in this review include: the discovery of the enzymatic synthesis of glutamine; the role of glutamine synthetase in defining the thermodynamics of ATPases; early isotopic tracer studies of the synthetase reaction; the proposed intermediacy of gamma-glutamyl-phosphate; the mechanism of methionine sulfoximine inhibition; stereochemical mapping of the enzyme's active site; detection of enzyme reaction cycle intermediates; borohydride trapping of gamma-glutamyl-P; positional isotope exchanges catalyzed by glutamine synthetase; regulation of bacterial enzyme; and a brief account of how knowledge of the atomic structure of bacterial glutamine synthetase has clarified ligand binding interactions. Concluding remarks also address how the so-called "Protein Ligase Problem" may be solved by extending the catalytic versatility of carboxyl-group activating enzymes.
迈斯特提出谷氨酰胺合成酶反应中存在γ-谷氨酰磷酸中间体,这为理解羧基的逐步活化如何极大地增加其对亲核攻击和酰胺键合成的敏感性奠定了基础。本综述涵盖的主题包括:谷氨酰胺酶促合成的发现;谷氨酰胺合成酶在确定ATP酶热力学方面的作用;合成酶反应早期的同位素示踪研究;γ-谷氨酰磷酸中间体的提议;甲硫氨酸亚砜亚胺抑制机制;酶活性位点的立体化学图谱;酶反应循环中间体的检测;γ-谷氨酰磷酸的硼氢化钠捕获;谷氨酰胺合成酶催化的位置同位素交换;细菌酶的调节;以及细菌谷氨酰胺合成酶原子结构知识如何阐明配体结合相互作用的简要说明。结语还讨论了如何通过扩展羧基活化酶的催化多功能性来解决所谓的“蛋白质连接酶问题”。