Exploration of Methanomethylophilus alvus Pyrrolysyl-tRNA Synthetase Activity in Yeast

酿酒酵母 氨酰tRNA合成酶 转移RNA 巴氏甲烷八叠球菌 酵母 生物 突变体 大肠杆菌 氨基酸 生物化学 蛋白质工程 定向进化 合成生物学 药物发现 终止密码子 遗传学 计算生物学 基因 产甲烷 核糖核酸 细菌
作者
Jessica T. Stieglitz,Priyanka Lahiri,Matthew I. Stout,James A. Van Deventer
出处
期刊:ACS Synthetic Biology [American Chemical Society]
卷期号:11 (5): 1824-1834 被引量:20
标识
DOI:10.1021/acssynbio.2c00001
摘要

Archaeal pyrrolysyl-tRNA synthetases (PylRSs) have been used to genetically encode over 200 distinct noncanonical amino acids (ncAAs) in proteins in Escherichia coli and mammalian cells. This vastly expands the range of chemical functionality accessible within proteins produced in these organisms. Despite these clear successes, explorations of PylRS function in yeast remain limited. In this work, we demonstrate that the Methanomethylophilus alvus PylRS (MaPylRS) and its cognate tRNACUAMaPyl support the incorporation of ncAAs into proteins produced in Saccharomyces cerevisiae using stop codon suppression methodologies. Additionally, we prepared three MaPylRS mutants originally engineered in E. coli and determined that all three were active with one or more ncAAs, although with low efficiencies of ncAA incorporation in comparison to the parent MaPylRS. Alongside MaPylRS variants, we evaluated the activity of previously reported Methanosarcina mazei, Methanosarcina barkeri, and chimeric M. mazei and M. barkeri PylRSs. Using S. cerevisiae RJY100 and pairing these PylRSs with the M. mazei tRNACUA, we did not observe any detectable stop codon suppression activity under the same conditions that produced moderately efficient ncAA incorporation with MaPylRS. The addition of MaPylRS/tRNACUAMaPyl to the orthogonal translation machinery toolkit in S. cerevisiae potentially opens the door to hundreds of ncAAs that have not previously been genetically encodable using other aminoacyl-tRNA synthetase/tRNA pairs. Extending the scope of ncAA incorporation in yeast could powerfully advance chemical and biological research for applications ranging from basic biological discovery to enzyme engineering and therapeutic protein lead discovery.
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