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构建用于有效异源蛋白表达的精氨酸 - tRNA适配型酿酒酵母菌株。

Generation of an arginine-tRNA-adapted Saccharomyces cerevisiae strain for effective heterologous protein expression.

作者信息

Noßmann Marcel, Pieper Jana, Hillmann Falk, Brakhage Axel A, Munder Thomas

机构信息

Department of Medical Engineering and Biotechnology, Ernst-Abbe-Hochschule Jena, University of Applied Sciences, Carl-Zeiss-Promenade 2, 07745, Jena, Germany.

Department of Molecular and Applied Microbiology, Leibniz-Institute for Natural Product Research and Infection Biology-Hans Knoell Institute (HKI) and Friedrich Schiller University Jena, Beutenbergstr. 11a, 07745, Jena, Germany.

出版信息

Curr Genet. 2018 Jun;64(3):589-598. doi: 10.1007/s00294-017-0774-8. Epub 2017 Nov 2.

Abstract

The tRNA population reflects the codon bias of the organism and affects the translation of heterologous target mRNA molecules. In this study, Saccharomyces cerevisiae strains with modified levels of rare tRNA were engineered, that allowed efficient generation of recombinant proteins with unfavorable codon usage. We established a novel synthetic tRNA expression cassette and verified functional nonsense suppressor tRNA generation in a stop codon read-through assay with a modified β-galactosidase reporter gene. Correlation between altered tRNA and protein level was shown by survival of copper sensitive S. cerevisiae cells in the presence of copper ions by an increased transcription of tRNA molecules, recognizing rare codons in a modified CUP1 gene. Genome integration of tRNA expression cassette led to the generation of arginine-tRNA-adapted S. cerevisiae strains, which showed elevated tRNA levels (tRNA, tRNA and tRNA) pairing to rare codons. The modified strain MNY3 revealed a considerably improved monitoring of protein-protein interaction from Aspergillus fumigatus bait and prey sequences in yeast two-hybrid experiments. In future, this principle to overcome limited recombinant protein expression by tRNA adaption of expression strains instead of codon adaption might provide new designer yeast cells for an efficient protein production and for improved genome-wide protein-protein interaction analyses.

摘要

tRNA群体反映了生物体的密码子偏好性,并影响异源靶mRNA分子的翻译。在本研究中,构建了稀有tRNA水平经过修饰的酿酒酵母菌株,该菌株能够高效表达密码子使用情况不佳的重组蛋白。我们建立了一种新型的合成tRNA表达盒,并通过使用修饰的β-半乳糖苷酶报告基因的终止密码子通读试验验证了功能性无义抑制tRNA的产生。通过在铜离子存在下铜敏感型酿酒酵母细胞的存活情况,显示了tRNA改变与蛋白质水平之间的相关性,这是通过tRNA分子转录增加实现的,这些tRNA分子识别修饰的CUP1基因中的稀有密码子。tRNA表达盒的基因组整合导致了精氨酸-tRNA适配的酿酒酵母菌株的产生,这些菌株显示出与稀有密码子配对的tRNA水平(tRNA、tRNA和tRNA)升高。在酵母双杂交实验中,修饰后的菌株MNY3对烟曲霉诱饵和猎物序列的蛋白质-蛋白质相互作用监测有了显著改善。未来,通过对表达菌株进行tRNA适配而非密码子适配来克服重组蛋白表达受限的这一原理,可能会为高效蛋白质生产和改进全基因组蛋白质-蛋白质相互作用分析提供新的设计酵母细胞。

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