Holz Caterina, Hesse Oliver, Bolotina Natalia, Stahl Ulf, Lang Christine
Department of Microbiology and Genetics, Institute for Biotechnology, Berlin University of Technology, Gustav-Meyer-Allee 25, D-13355 Berlin, Germany.
Protein Expr Purif. 2002 Aug;25(3):372-8. doi: 10.1016/s1046-5928(02)00029-3.
Methods have been developed aimed at applying at high-throughput technology for expression of cloned cDNAs in yeast. Yeast is a eukaryotic host, which produces soluble recombinant proteins and is capable of introducing post-translational modifications of protein. It is, thus, an appropriate expression system both for the routine expression of various cDNAs or protein domains and for the expression of proteins, which are not correctly expressed in Escherichia coli. Here, we describe a standard system in Saccharomyces cerevisiae, based on a vector for intracellular protein expression, where the gene products are fused to specific peptide sequences (tags). These epitope tags, the N-terminal His(6) tag and the C-terminal StrepII tag, allow subsequent immunological identification and purification of the gene products by a two-step affinity chromatography. This method of dual-tagged recombinant protein purification eliminates contamination by degraded protein products. A miniaturization of the procedures for cloning, expression, and detection was performed to allow all steps to be carried out in 96-well microtiter plates. The system is, thus, suitable for automation. We were able to analyze the simultaneous protein expression of a large number of cDNA clones due to the highly parallel approach of protein production and purification. The microtiter plate technology format was extended to quantitative analysis. An ELISA-based assay was developed that detects StrepII-tagged proteins. The application of this high-throughput expression system for protein production will be a useful tool for functional and structural analyses of novel genes, identified by the Human Genome Project and other large-scale sequencing projects.
已开发出旨在将高通量技术应用于酵母中克隆cDNA表达的方法。酵母是一种真核宿主,它能产生可溶性重组蛋白,并能够进行蛋白质的翻译后修饰。因此,它既是用于各种cDNA或蛋白质结构域常规表达的合适表达系统,也是用于在大肠杆菌中不能正确表达的蛋白质表达的合适表达系统。在此,我们描述了一种酿酒酵母中的标准系统,该系统基于用于细胞内蛋白质表达的载体,其中基因产物与特定肽序列(标签)融合。这些表位标签,即N端His(6)标签和C端StrepII标签,允许通过两步亲和层析对基因产物进行后续的免疫学鉴定和纯化。这种双标签重组蛋白纯化方法消除了降解蛋白产物的污染。对克隆、表达和检测程序进行了小型化处理,以使所有步骤都能在96孔微量滴定板中进行。因此,该系统适用于自动化操作。由于蛋白质生产和纯化的高度并行方法,我们能够分析大量cDNA克隆的同时蛋白质表达。微量滴定板技术形式扩展到了定量分析。开发了一种基于ELISA的检测方法,用于检测带有StrepII标签的蛋白质。这种用于蛋白质生产的高通量表达系统的应用,将成为对人类基因组计划和其他大规模测序项目所鉴定的新基因进行功能和结构分析的有用工具。