Singh-Blom Amrita, Hughes Randall A, Ellington Andrew D
Department of Molecular Genetics and Microbiology, The University of Texas at Austin, 1 University Station, A4800, Austin, TX 78712, United States; Institute for Cellular and Molecular Biology, The University of Texas at Austin, 1 University Station, A4800 Austin, TX 78712, United States.
Institute for Cellular and Molecular Biology, The University of Texas at Austin, 1 University Station, A4800 Austin, TX 78712, United States; Applied Research Laboratories, The University of Texas at Austin, 10000 Burnet Rd. Austin, TX 78758, United States.
J Biotechnol. 2014 May 20;178:12-22. doi: 10.1016/j.jbiotec.2014.02.009. Epub 2014 Mar 11.
Residue-specific incorporation of non-canonical amino acids into proteins is usually performed in vivo using amino acid auxotrophic strains and replacing the natural amino acid with an unnatural amino acid analog. Herein, we present an efficient amino acid depleted cell-free protein synthesis system that can be used to study residue-specific replacement of a natural amino acid by an unnatural amino acid analog. This system combines a simple methodology and high protein expression titers with a high-efficiency analog substitution into a target protein. To demonstrate the productivity and efficacy of a cell-free synthesis system for residue-specific incorporation of unnatural amino acids in vitro, we use this system to show that 5-fluorotryptophan and 6-fluorotryptophan substituted streptavidin retain the ability to bind biotin despite protein-wide replacement of a natural amino acid for the amino acid analog. We envisage this amino acid depleted cell-free synthesis system being an economical and convenient format for the high-throughput screening of a myriad of amino acid analogs with a variety of protein targets for the study and functional characterization of proteins substituted with unnatural amino acids when compared to the currently employed in vivo methodologies.
非天然氨基酸在蛋白质中的位点特异性掺入通常在体内利用氨基酸营养缺陷型菌株进行,即将天然氨基酸替换为非天然氨基酸类似物。在此,我们展示了一种高效的氨基酸耗尽型无细胞蛋白质合成系统,该系统可用于研究非天然氨基酸类似物对天然氨基酸的位点特异性替换。该系统将简单的方法、高蛋白表达滴度与向目标蛋白质中高效替换类似物相结合。为了证明体外非天然氨基酸位点特异性掺入的无细胞合成系统的生产力和功效,我们使用该系统表明,尽管在整个蛋白质范围内天然氨基酸被氨基酸类似物取代,但5-氟色氨酸和6-氟色氨酸取代的链霉亲和素仍保留结合生物素的能力。我们设想,与目前使用的体内方法相比,这种氨基酸耗尽型无细胞合成系统是一种经济便捷的形式,可用于高通量筛选大量氨基酸类似物与各种蛋白质靶点,以研究和表征用非天然氨基酸取代的蛋白质的功能。