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在大肠杆菌中产生的重组人胃肠道谷胱甘肽过氧化物酶突变体的特性分析

Characterization of recombinant human gastrointestinal glutathione peroxidase mutant produced in Escherichia coli.

作者信息

Guo X, Song J, Guan T, Wang S, Wang Y, Meng Y, Guo J, Li T, Ma Chuang, Wei J

机构信息

College of Pharmaceutical Science, Jilin University , Changchun , P. R. China.

出版信息

Free Radic Res. 2015 Mar;49(3):228-35. doi: 10.3109/10715762.2014.995182. Epub 2015 Jan 23.

DOI:10.3109/10715762.2014.995182
PMID:25488369
Abstract

Gastrointestinal glutathione peroxidase (GI-GPx, GPx2) is a selenium-dependent enzyme and regarded as the first line of defense against oxidative stress caused by ingested pro-oxidants or gut microbes. As the essential part of the catalytic site of GPx2, selenocysteine (Sec) is encoded by an in-frame UGA stop codon, which makes the expression of human GPx2 (hGPx2) using traditional recombinant DNA technology difficult. In order to produce bioactive recombinant hGPx2, the gene of hGPx2 was designed with the conversion of the codons for four cysteine (Cys) residues to the codons for serine (Ser) residues and the codon for Sec-40 was changed to the codon for Cys. This recombinant seleno-hGPx2 mutant was obtained using a single protein production system in a cysteine (Cys) auxotrophic strain, in which Sec was introduced into the protein via tRNA(Cys) misleading. The activity of this mutant was in the same order of magnitude as that of hGPx4, but about one order of magnitude lower than that of hGPx1 and hGPx3. Further study showed that the mutant exhibited pH and temperature optima of 7.4 and 25°C, respectively. The results obtained from the kinetic analysis demonstrated that it followed a typical ping-pong mechanism similar to native GPx. As there was no report on the activity of purified GPx2, this research was valuable in recognizing native GPx2. In addition, a three-dimensional structure of seleno-hGPx2 mutant was constructed, which could facilitate further analysis of the role and the catalytic mechanism of native GPx2.

摘要

胃肠道谷胱甘肽过氧化物酶(GI-GPx,GPx2)是一种硒依赖性酶,被视为抵御摄入的促氧化剂或肠道微生物引起的氧化应激的第一道防线。作为GPx2催化位点的重要组成部分,硒代半胱氨酸(Sec)由框内UGA终止密码子编码,这使得使用传统重组DNA技术表达人GPx2(hGPx2)变得困难。为了生产具有生物活性的重组hGPx2,设计了hGPx2基因,将四个半胱氨酸(Cys)残基的密码子转换为丝氨酸(Ser)残基的密码子,并将Sec-40的密码子改为Cys的密码子。使用半胱氨酸(Cys)营养缺陷型菌株中的单一蛋白质生产系统获得了这种重组硒代hGPx2突变体,其中Sec通过tRNA(Cys)误导被引入蛋白质中。该突变体的活性与hGPx4处于同一数量级,但比hGPx1和hGPx3低约一个数量级。进一步研究表明,该突变体的最适pH和温度分别为7.4和25°C。动力学分析结果表明,它遵循与天然GPx类似的典型乒乓机制。由于没有关于纯化的GPx2活性的报道,这项研究对于认识天然GPx2具有重要价值。此外,构建了硒代hGPx2突变体的三维结构,这有助于进一步分析天然GPx2的作用和催化机制。

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