Cruz-Teran Carlos A, Tiruthani Karthik, Mischler Adam, Rao Balaji M
Department of Chemical and Biomolecular Engineering, North Carolina State University , Raleigh, North Carolina 27695, United States.
ACS Synth Biol. 2017 Nov 17;6(11):2096-2107. doi: 10.1021/acssynbio.7b00144. Epub 2017 Aug 14.
The need for recombinant expression of soluble protein slows the validation of engineered proteins isolated from combinatorial libraries and limits the number of protein variants evaluated. To overcome this bottleneck, we describe a system for simultaneous cell surface display and soluble secretion of proteins in Saccharomyces cerevisiae based on inefficient ribosomal skipping. Ribosomal skipping mediated by "self-cleaving" 2A peptides produces two proteins from a single open reading frame. Incorporation of the F2A peptide sequence-with ∼50% efficiency of ribosomal skipping-between the protein of interest and the yeast cell wall protein Aga2 results in simultaneous expression of both the solubly secreted protein and the protein-Aga2 fusion that is tethered to the yeast cell surface. We show that binding proteins derived from the Sso7d scaffold and the homodimeric enzyme glucose oxidase can be simultaneously secreted solubly and expressed as yeast cell surface fusions using the F2A-based system. Furthermore, a combinatorial library of Sso7d mutants can be screened to isolate binders with higher affinity for a model target (lysozyme), and the pool of higher affinity binders can be characterized in soluble form. Significantly, we show that both N- and C-terminal fusions to Aga2 can be simultaneously secreted solubly and displayed on the cell surface; this is particularly advantageous because protein functionality can be affected by the specific position of Aga2 in the protein fusion. We expect that the F2A-based yeast surface display and secretion system will be a useful tool for protein engineering and enable efficient characterization of individual clones isolated from combinatorial libraries.
可溶性蛋白的重组表达需求减缓了从组合文库中分离出的工程蛋白的验证过程,并限制了所评估的蛋白变体数量。为克服这一瓶颈,我们描述了一种基于低效核糖体跳跃的酿酒酵母中蛋白质同时进行细胞表面展示和可溶性分泌的系统。由“自切割”2A肽介导的核糖体跳跃从单个开放阅读框产生两种蛋白质。在目标蛋白与酵母细胞壁蛋白Aga2之间掺入F2A肽序列(核糖体跳跃效率约为50%),可导致可溶性分泌蛋白和与酵母细胞表面相连的蛋白-Aga2融合蛋白同时表达。我们表明,源自Sso7d支架的结合蛋白和同二聚体酶葡萄糖氧化酶可以使用基于F2A的系统同时进行可溶性分泌并作为酵母细胞表面融合蛋白表达。此外,可以筛选Sso7d突变体的组合文库以分离出对模型靶标(溶菌酶)具有更高亲和力的结合剂,并且可以对更高亲和力结合剂库进行可溶性形式的表征。重要的是,我们表明与Aga2的N端和C端融合蛋白都可以同时进行可溶性分泌并展示在细胞表面;这特别有利,因为蛋白功能可能会受到Aga2在蛋白融合物中特定位置的影响。我们预计基于F2A的酵母表面展示和分泌系统将成为蛋白质工程的有用工具,并能够对从组合文库中分离出的单个克隆进行高效表征。