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NMR 研究辅酶吡哆醛 5′-磷酸(13)C 和(15)N 标记的醛亚胺在水中的稳定性、质子化状态和互变异构。

NMR studies of the stability, protonation States, and tautomerism of (13)C- AND (15)N-labeled aldimines of the coenzyme pyridoxal 5'-phosphate in water.

机构信息

Institut für Chemie und Biochemie, Freie Universität Berlin, Takustrasse 3, D-14195 Berlin, Germany.

出版信息

Biochemistry. 2010 Dec 28;49(51):10818-30. doi: 10.1021/bi101061m. Epub 2010 Dec 6.

DOI:10.1021/bi101061m
PMID:21067170
Abstract

We have measured the pH-dependent (1)H, (13)C, and (15)N NMR spectra of pyridoxal 5'-phosphate ((13)C(2)-PLP) mixed with equal amounts of either doubly (15)N-labeled diaminopropane, (15)N(α)-labeled l-lysine, or (15)N(ε)-labeled l-lysine as model systems for various intermediates of the transimination reaction in PLP-dependent enzymes. At low pH, only the hydrate and aldehyde forms of PLP and the free protonated diamines are present. Above pH 4, the formation of single- and double-headed aldimines (Schiff bases) with the added diamines is observed, and their (13)C and (15)N NMR parameters have been characterized. For 1:1 mixtures the single-headed aldimines dominate. In a similar way, the NMR parameters of the geminal diamine formed with diaminopropane at high pH are measured. However, no geminal diamine is formed with l-lysine. In contrast to the aldimine formed with the ε-amino group of lysine, the aldimine formed with the α-amino group is unstable at moderately high pH but dominates slightly below pH 10. By analyzing the NMR data, both the mole fractions of the different PLP species and up to 6 different protonation states including their pK(a) values were obtained. Furthermore, the data show that all Schiff bases are subject to a proton tautomerism along the intramolecular OHN hydrogen bond, where the zwitterionic form is favored before deprotonation occurs at high pH. This observation, as well as the observation that around pH 7 the different PLP species are present in comparable amounts, sheds new light on the mechanism of the transimination reaction.

摘要

我们已经测量了 pH 值依赖性(1)H、(13)C 和(15)N NMR 光谱的吡啶醛 5'-磷酸酯((13)C(2)-PLP)与等量的双(15)N 标记的二氨基丙烷、(15)N(α)-标记的 l-赖氨酸或(15)N(ε)-标记的 l-赖氨酸混合,作为 PLP 依赖性酶中转氨基反应各种中间体的模型体系。在低 pH 值下,只有 PLP 的水合物和醛形式以及游离质子化的二胺存在。在 pH 值高于 4 时,观察到与外加二胺形成单头和双头亚胺(席夫碱),并对其(13)C 和(15)N NMR 参数进行了表征。对于 1:1 混合物,单头亚胺占主导地位。以类似的方式,测量了高 pH 值下与二氨基丙烷形成的偕二胺的 NMR 参数。然而,l-赖氨酸没有形成偕二胺。与与赖氨酸的ε-氨基形成的亚胺不同,与α-氨基形成的亚胺在中等高 pH 值下不稳定,但在 pH 值略低于 10 时占主导地位。通过分析 NMR 数据,获得了不同 PLP 物种的摩尔分数以及多达 6 种不同的质子化状态,包括它们的 pK(a)值。此外,数据表明,所有的席夫碱都受到分子内 OHN 氢键的质子互变异构的影响,在高 pH 值下发生去质子化之前,两性离子形式是有利的。这一观察结果以及在 pH 值约为 7 时不同 PLP 物种以可比量存在的观察结果,为转氨基反应的机制提供了新的见解。

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