A novel plasmid-based experimental system in Saccharomyces cerevisiae that enables the introduction of 10 different plasmids into cells

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY FEBS Open Bio Pub Date : 2024-10-10 DOI:10.1002/2211-5463.13893
Geyao Dong, Tsuyoshi Nakai, Tetsuo Matsuzaki
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Abstract

The budding yeast Saccharomyces cerevisiae is commonly used as an expression platform for the production of valuable compounds. Yeast-based genetic research can uniquely utilize auxotrophy in transformant selection: auxotrophic complementation by an auxotrophic marker gene on exogenous DNA (such as plasmids). However, the number of required auxotrophic nutrients restricts the number of plasmids maintained by the cells. We, therefore, developed novel Δ10 strains that are auxotrophic for 10 different nutrients and new plasmids with two multiple cloning sites and auxotrophic markers for use in Δ10 strains. We confirmed that Δ10 strains were able to maintain 10 types of plasmids. Using plasmids encoding model proteins, we detected the co-expression of 17 different genes in Δ10 cell lines. We also constructed Δ9 strains that exhibited auxotrophy for nine nutrients and increased growth compared to Δ10. This study opens a new avenue for the co-expression of a large number of genes in eukaryotic cells.

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基于质粒的新型酿酒酵母实验系统,可将 10 种不同质粒引入细胞。
芽殖酵母(Saccharomyces cerevisiae)通常被用作生产有价值化合物的表达平台。基于酵母的基因研究可以在转化体选择中独特地利用辅助营养:通过外源 DNA(如质粒)上的辅助营养标记基因进行辅助营养互补。然而,所需辅助营养物质的数量限制了细胞维持质粒的数量。因此,我们开发了可辅助 10 种不同营养物质的新型 Δ10 菌株,以及具有两个多克隆位点和辅助营养标记的新质粒,供 Δ10 菌株使用。我们证实,Δ10 菌株能够保持 10 种质粒。利用编码模式蛋白的质粒,我们检测到 17 种不同基因在 Δ10 细胞系中共同表达。我们还构建了Δ9菌株,与Δ10相比,Δ9菌株对九种营养物质具有辅助营养作用,生长速度也有所提高。这项研究为真核细胞中大量基因的共表达开辟了一条新途径。
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来源期刊
FEBS Open Bio
FEBS Open Bio BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
5.10
自引率
0.00%
发文量
173
审稿时长
10 weeks
期刊介绍: FEBS Open Bio is an online-only open access journal for the rapid publication of research articles in molecular and cellular life sciences in both health and disease. The journal''s peer review process focuses on the technical soundness of papers, leaving the assessment of their impact and importance to the scientific community. FEBS Open Bio is owned by the Federation of European Biochemical Societies (FEBS), a not-for-profit organization, and is published on behalf of FEBS by FEBS Press and Wiley. Any income from the journal will be used to support scientists through fellowships, courses, travel grants, prizes and other FEBS initiatives.
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