Lemke Christopher T, Howell P Lynne
Structural Biology and Biochemistry, Research Institute, Hospital for Sick Children, 555 University Avenue, Toronto, Ontario, M5G 1X8, Canada.
J Biol Chem. 2002 Apr 12;277(15):13074-81. doi: 10.1074/jbc.M112436200. Epub 2002 Jan 23.
Argininosuccinate synthetase (AS) is the rate-limiting enzyme of both the urea and arginine-citrulline cycles. In mammals, deficiency of AS leads to citrullinemia, a debilitating and often fatal autosomal recessive urea cycle disorder, whereas its overexpression for sustained nitric oxide production via the arginine-citrulline cycle leads to the potentially fatal hypotension associated with septic and cytokine-induced circulatory shock. The crystal structures of Escherichia coli argininosuccinate synthetase (EAS) in complex with ATP and with ATP and citrulline have been determined at 2.0-A resolution. These are the first EAS structures to be solved in the presence of a nucleotide substrate and clearly identify the residues that interact with both ATP and citrulline. Two distinct conformations are revealed for ATP, both of which are believed to be catalytically relevant. In addition, comparisons of these EAS structures with those of the apoenzyme and EAS complexed with aspartate and citrulline (Lemke, C. T., and Howell, P. L. (2001) Structure (Lond.) 9, 1153-1164) provide structural evidence of ATP-induced conformational changes in the nucleotide binding domain. Combined, these structures also provide structural explanations of some of the observed kinetic properties of the enzyme and have enabled a detailed enzymatic mechanism of AS catalysis to be proposed.
精氨琥珀酸合成酶(AS)是尿素循环和精氨酸 - 瓜氨酸循环的限速酶。在哺乳动物中,AS缺乏会导致瓜氨酸血症,这是一种使人衰弱且往往致命的常染色体隐性尿素循环障碍,而通过精氨酸 - 瓜氨酸循环持续产生一氧化氮导致其过表达会引发与脓毒症和细胞因子诱导的循环性休克相关的潜在致命性低血压。已在2.0埃分辨率下确定了与ATP以及与ATP和瓜氨酸结合的大肠杆菌精氨琥珀酸合成酶(EAS)的晶体结构。这些是在存在核苷酸底物的情况下解析出的首批EAS结构,并明确鉴定了与ATP和瓜氨酸相互作用的残基。ATP呈现出两种不同的构象,两者都被认为与催化相关。此外,将这些EAS结构与脱辅酶以及与天冬氨酸和瓜氨酸复合的EAS结构(Lemke,C.T.,和Howell,P.L.(2001年)《结构》(伦敦)9,1153 - 1164)进行比较,为ATP诱导的核苷酸结合结构域构象变化提供了结构证据。综合起来,这些结构还为该酶一些观察到的动力学特性提供了结构解释,并使得能够提出AS催化的详细酶促机制。