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通过胰蛋白酶消化和 HPLC-MS 对固定化酶的取向进行表征和研究:设计一种用于合成头孢菌素的高效催化剂。

Characterization and study of the orientation of immobilized enzymes by tryptic digestion and HPLC-MS: design of an efficient catalyst for the synthesis of cephalosporins.

机构信息

Department of Pharmaceutical Chemistry, University of Pavia, viale Taramelli 12, Pavia I-27100, Italy.

出版信息

Biomacromolecules. 2010 Jun 14;11(6):1623-32. doi: 10.1021/bm100259a.

Abstract

An innovative approach to determine the orientation of penicillin G acylase (PGA) from Escherichia coli covalently immobilized onto solid supports has been developed. This method is based on tryptic digestion of immobilized PGA followed by HPLC-MS analysis of the released peptides which are supposed to be only those exposed toward the reaction medium and not directly bound to the solid support. To this purpose, PGA was immobilized on Eupergit C (acrylic hydrophobic resin) and glyoxyl-agarose (hydrophilic resin) functionalized with epoxy and aldehyde groups, respectively, both involving the Lys residues of the protein. The peptide maps obtained were analyzed to derive the orientation of immobilized PGA, as the position of the detected Lys gave indication concerning the accessibility of the different areas of the protein. The results indicate that PGA immobilization on both supports involves mainly Lys located near the binding pocket (70%). Some differences in the enzyme orientation on the two supports can be deduced by the presence of different unbound Lys residues in the released peptides, specific to each support (Lys 117alpha for PGA-Eupergit C; Lys 163alpha and Lys 165alpha for PGA-glyoxyl-agarose). These results have been correlated with the data obtained in the kinetically controlled synthesis and indicate that the orientation of PGA on both supports is partially unfavorable, driving the active site near the support surface. This type of orientation of the enzyme enhances the effect of the nature of the support and of the binding chemistry on the catalytic properties. The information obtained indicated the most suitable support and activation strategy to design an immobilized acylase with good synthetic properties for preparative processes. The glyoxyl-Eupergit C support with enhanced porosity synergically combines the mechanical stability and synthetic performances of immobilized PGA and was successfully used in the synthesis of several cephalosporins.

摘要

一种创新的方法来确定青霉素 G 酰化酶(PGA)的方向从大肠杆菌共价固定在固体载体上已经开发出来。这种方法是基于固定化 PGA 的胰蛋白酶消化,然后通过 HPLC-MS 分析释放的肽,这些肽应该只暴露在反应介质中,而不直接与固体载体结合。为此,PGA 被固定在 Eupergit C(丙烯酰胺疏水性树脂)和 Glyoxyl-agarose(亲水性树脂)上,分别用环氧和醛基官能化,这两种方法都涉及到蛋白质的赖氨酸残基。所得肽图进行分析,得出固定化 PGA 的取向,因为检测到的赖氨酸的位置表明了蛋白质不同区域的可及性。结果表明,PGA 在两种载体上的固定化主要涉及靠近结合口袋的赖氨酸(70%)。在释放的肽中存在特定于每种载体的不同未结合的赖氨酸残基(PGA-Eupergit C 中的 Lys 117alpha;PGA-glyoxyl-agarose 中的 Lys 163alpha 和 Lys 165alpha),可以推断出两种载体上酶的取向存在一些差异。这些结果与动力学控制合成中获得的数据相关,并表明 PGA 在两种载体上的取向部分不利,使活性位点靠近载体表面。这种酶的取向增强了载体的性质和结合化学对催化性能的影响。所获得的信息表明了最适合的载体和激活策略,以设计具有良好合成性能的固定化酰化酶,用于制备过程。具有增强的多孔性的 Glyoxyl-Eupergit C 载体协同结合了固定化 PGA 的机械稳定性和合成性能,并成功用于几种头孢菌素的合成。

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