Cabrita Lisa D, Dai Weiwen, Bottomley Stephen P
Department of Biochemistry and Molecular Biology, School of Biomedical Sciences, Monash University, Clayton, 3800, Australia.
BMC Biotechnol. 2006 Mar 1;6:12. doi: 10.1186/1472-6750-6-12.
In the past few years, both automated and manual high-throughput protein expression and purification has become an accessible means to rapidly screen and produce soluble proteins for structural and functional studies. However, many of the commercial vectors encoding different solubility tags require different cloning and purification steps for each vector, considerably slowing down expression screening. We have developed a set of E. coli expression vectors with different solubility tags that allow for parallel cloning from a single PCR product and can be purified using the same protocol.
The set of E. coli expression vectors, encode for either a hexa-histidine tag or the three most commonly used solubility tags (GST, MBP, NusA) and all with an N-terminal hexa-histidine sequence. The result is two-fold: the His-tag facilitates purification by immobilised metal affinity chromatography, whilst the fusion domains act primarily as solubility aids during expression, in addition to providing an optional purification step. We have also incorporated a TEV recognition sequence following the solubility tag domain, which allows for highly specific cleavage (using TEV protease) of the fusion protein to yield native protein. These vectors are also designed for ligation-independent cloning and they possess a high-level expressing T7 promoter, which is suitable for auto-induction. To validate our vector system, we have cloned four different genes and also one gene into all four vectors and used small-scale expression and purification techniques. We demonstrate that the vectors are capable of high levels of expression and that efficient screening of new proteins can be readily achieved at the laboratory level.
The result is a set of four rationally designed vectors, which can be used for streamlined cloning, expression and purification of target proteins in the laboratory and have the potential for being adaptable to a high-throughput screening.
在过去几年中,自动化和手动高通量蛋白质表达与纯化已成为一种可获取的手段,用于快速筛选和生产用于结构与功能研究的可溶性蛋白质。然而,许多编码不同溶解性标签的商业载体,每个载体都需要不同的克隆和纯化步骤,这大大减慢了表达筛选的速度。我们开发了一组带有不同溶解性标签的大肠杆菌表达载体,它们允许从单个PCR产物进行平行克隆,并且可以使用相同的方案进行纯化。
这组大肠杆菌表达载体编码六聚组氨酸标签或三种最常用的溶解性标签(GST、MBP、NusA),并且都带有N端六聚组氨酸序列。其结果有两方面:His标签便于通过固定化金属亲和层析进行纯化,而融合结构域在表达过程中主要作为溶解性辅助因子,此外还提供了一个可选的纯化步骤。我们还在溶解性标签结构域之后引入了TEV识别序列,这允许对融合蛋白进行高度特异性切割(使用TEV蛋白酶)以产生天然蛋白。这些载体还设计用于不依赖连接的克隆,并且拥有一个高水平表达的T7启动子,适用于自诱导。为了验证我们的载体系统,我们将四个不同的基因以及一个基因分别克隆到所有四个载体中,并使用小规模表达和纯化技术。我们证明这些载体能够实现高水平表达,并且在实验室水平上能够轻松实现对新蛋白质的高效筛选。
结果是一组经过合理设计的四个载体,可用于在实验室中简化目标蛋白的克隆、表达和纯化,并且具有适用于高通量筛选的潜力。