Tan Song, Kern Ronald C, Selleck William
Center for Gene Regulation, Department of Biochemistry and Molecular Biology, 108 Althouse Laboratory, The Pennsylvania State University, University Park, PA 16802-1014, USA.
Protein Expr Purif. 2005 Apr;40(2):385-95. doi: 10.1016/j.pep.2004.12.002.
Protein complexes are responsible for key biological processes, but methods to produce recombinant protein complexes for biochemical and biophysical studies are limited. We have developed a second generation Escherichia coli polycistronic expression system which improves on the modularity of our original pST39 polycistronic system. This pST44 expression system simplifies the construction of polycis-tronic plasmids, particularly of variant plasmids expressing deletion or point mutations in any subunit. To facilitate purification of the expressed complex, we have prepared a suite of 72 plasmids which allows individual subunits to be tagged at the N- or C-terminus with six permanent or cleavable peptide affinity tags. We demonstrate these new features in a detailed deletion analysis of a three protein yeast Piccolo NuA4 histone acetyltransferase complex, and in the affinity purification of a human Piccolo NuA4 complex. We also utilize the modular design to show that the order of expression of the three subunits along the polycistronic plasmid does not affect the reconstitution of the yeast Piccolo complex in E. coli.
蛋白质复合物负责关键的生物学过程,但用于生化和生物物理研究的重组蛋白质复合物的生产方法有限。我们开发了第二代大肠杆菌多顺反子表达系统,该系统改进了我们原来的pST39多顺反子系统的模块化。这个pST44表达系统简化了多顺反子质粒的构建,特别是表达任何亚基缺失或点突变的变异质粒的构建。为便于纯化表达的复合物,我们制备了一套72种质粒,可使单个亚基在N端或C端用六种永久性或可切割的肽亲和标签进行标记。我们在对三种蛋白质的酵母小皮笛NuA4组蛋白乙酰转移酶复合物进行的详细缺失分析以及对人小皮笛NuA4复合物的亲和纯化中展示了这些新特性。我们还利用模块化设计表明,沿着多顺反子质粒的三个亚基的表达顺序不影响酵母小皮笛复合物在大肠杆菌中的重组。