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磷手性磷脂。大肠杆菌和酵母中磷脂酰丝氨酸合酶催化反应的立体化学过程。

Phospholipids chiral at phosphorus. Steric course of the reactions catalyzed by phosphatidylserine synthase from Escherichia coli and yeast.

作者信息

Raetz C R, Carman G M, Dowhan W, Jiang R T, Waszkuc W, Loffredo W, Tsai M D

机构信息

Department of Biochemistry, University of Wisconsin, Madison 53706.

出版信息

Biochemistry. 1987 Jun 30;26(13):4022-7. doi: 10.1021/bi00387a042.

Abstract

The steric courses of the reactions catalyzed by phosphatidylserine (PS) synthase from Escherichia coli and yeast were elucidated by the following procedure. RP and SP isomers of 1,2-dipalmitoyl-sn-glycero-3-[17O,18O]phosphoethanolamine ([17O,18O]DPPE) were synthesized with slight modification of the previous procedure [Bruzik, K., & Tsai, M.-D. (1984) J. Am. Chem. Soc. 106, 747-754] and converted to (RP)- and (SP)-1,2-dipalmitoyl-sn-glycero-3-[16O,17O,18O]phosphoric acid ([16O,17O18O]DPPA), respectively, by incubating with phospholipase D. Condensation of [16O,17O,18O]DPPA with cytidine 5'-monophosphomorpholidate in pyridine gave the desired substrate for PS synthase, [17O,18O]cytidine 5'-diphospho-1,2-dipalmitoyl-sn-glycerol ([17O,18O]CDP-DPG), as a mixture of several isotopic and configurational isomers. Incubation of [17O,18O]CDP-DPG with a mixture of L-serine, PS synthase (which converted [17O,18O]CDP-DPG to phosphatidylserine), and PS decarboxylase (which catalyzes decarboxylation of phosphatidylserine) gave [17O,18O]DPPE. The configuration and isotopic enrichments of the starting [17O,18O]DPPE and the product were analyzed by 31P NMR following trimethylsilylation of the DPPE. The results indicate that the reaction of E. coli PS synthase proceeds with retention of configuration at phosphorus, which suggests a two-step mechanism involving a phosphatidyl-enzyme intermediate, while the yeast PS synthase catalyzes the reaction with inversion of configuration, which suggests a single-displacement mechanism. Such results lend strong support to the ping-pong mechanism proposed for the E. coli enzyme and the sequential Bi-Bi mechanism proposed for the yeast enzyme, both based on previous isotopic exchange experiments.

摘要

通过以下步骤阐明了大肠杆菌和酵母中磷脂酰丝氨酸(PS)合酶催化反应的立体化学过程。对先前的方法[布鲁齐克,K.,& 蔡,M.-D.(1984)《美国化学会志》106,747 - 754]稍作修改,合成了1,2 - 二棕榈酰 - sn - 甘油 - 3 - [17O,18O]磷酸乙醇胺([17O,18O]DPPE)的RP和SP异构体,并通过与磷脂酶D孵育分别将其转化为(RP) - 和(SP) - 1,2 - 二棕榈酰 - sn - 甘油 - 3 - [16O,17O,18O]磷酸([16O,17O18O]DPPA)。[16O,17O,18O]DPPA与胞苷5'-单磷酸吗啉代酯在吡啶中缩合,得到PS合酶所需的底物[17O,18O]胞苷5'-二磷酸 - 1,2 - 二棕榈酰 - sn - 甘油([17O,18O]CDP - DPG),它是几种同位素和构型异构体的混合物。将[17O,18O]CDP - DPG与L - 丝氨酸、PS合酶(将[17O,18O]CDP - DPG转化为磷脂酰丝氨酸)和PS脱羧酶(催化磷脂酰丝氨酸脱羧)的混合物一起孵育,得到[17O,18O]DPPE。在对DPPE进行三甲基硅烷化后,通过31P NMR分析起始[17O,18O]DPPE和产物的构型及同位素富集情况。结果表明,大肠杆菌PS合酶的反应在磷原子处构型保持,这表明存在涉及磷脂酰 - 酶中间体的两步机制,而酵母PS合酶催化反应时构型翻转,这表明是单取代机制。这些结果有力地支持了基于先前同位素交换实验为大肠杆菌酶提出的乒乓机制和为酵母酶提出的顺序双底物双产物机制。

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