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酵母平台工程化用于合成 gRNA 着陆垫,可通过单个 gRNA/Cas9 系统实现多个基因的整合。

The yeast platform engineered for synthetic gRNA-landing pads enables multiple gene integrations by a single gRNA/Cas9 system.

机构信息

Department of Biological Sciences, University of Calgary, Calgary, AB, T2N1N4, Canada.

Department of Chemistry and Nanoscience, Ewha Womans University, Seoul, 03760, Republic of Korea.

出版信息

Metab Eng. 2021 Mar;64:111-121. doi: 10.1016/j.ymben.2021.01.011. Epub 2021 Feb 4.

Abstract

Saccharomyces cerevisiae is a versatile microbial platform to build synthetic metabolic pathways for production of diverse chemicals. To expedite the construction of complex metabolic pathways by multiplex CRISPR-Cas9 genome-edit, eight desirable intergenic loci, located adjacent to highly expressed genes selected from top 100 expressers, were identified and fully characterized for three criteria after integrating green fluorescent protein (GFP) gene - CRISPR-mediated GFP integration efficiency, expression competency assessed by levels of GFP fluorescence, and assessing growth rates of GFP integrated strains. Five best performing intergenic loci were selected to build a multiplex CRISPR platform, and a synthetic 23-bp DNA comprised of 20-bp synthetic DNA with a protospacer adjacent motif (PAM) was integrated into the five loci using CRISPR-Cas9 in a sequential manner. This process resulted in five different yeast strains harbouring 1-5 synthetic gRNA-binding sites in their genomes. Using these pre-engineered yeast strains, simultaneous integrations of 2-, 3-, 4-, or 5-genes to the targeted loci were demonstrated with efficiencies from 85% to 98% using beet pigment betalain (3-gene pathway), hygromycin and geneticin resistance markers. Integrations of the multiple, foreign genes in the targeted loci with 100% precision were validated by genotyping. Finally, we further developed the strain to have 6th synthetic gRNA-binding site, and the resulting yeast strain was used to generate a yeast strain producing a sesquiterpene lactone, kauniolide by simultaneous 6-gene integrations. This study demonstrates the effectiveness of a single gRNA-mediated CRISPR platform to build complex metabolic pathways in yeast.

摘要

酿酒酵母是一种多功能的微生物平台,可以构建用于生产各种化学品的合成代谢途径。为了通过多重 CRISPR-Cas9 基因组编辑快速构建复杂的代谢途径,我们鉴定并充分表征了 8 个理想的基因间位点,这些位点位于从前 100 个表达者中选择的高表达基因附近,整合绿色荧光蛋白 (GFP) 基因后,符合三个标准 - CRISPR 介导的 GFP 整合效率、GFP 荧光水平评估的表达能力以及 GFP 整合菌株的生长速率。选择了五个表现最佳的基因间位点来构建多重 CRISPR 平台,并使用 CRISPR-Cas9 以顺序方式将由 20 个碱基的合成 DNA 和一个间隔邻近基序 (PAM) 组成的 23 个碱基的合成 DNA 整合到这五个位点中。该过程导致五个不同的酵母菌株在其基因组中含有 1-5 个合成 gRNA 结合位点。使用这些预先设计的酵母菌株,通过甜菜色素甜菜红素(3 个基因途径)、潮霉素和遗传霉素抗性标记,展示了同时将 2-、3-、4-或 5-个基因整合到靶向基因座的效率为 85%至 98%。通过基因分型验证了靶向基因座中外来基因的多次整合具有 100%的精度。最后,我们进一步开发了具有第 6 个合成 gRNA 结合位点的菌株,并用该酵母菌株同时进行 6 个基因整合来生产倍半萜内酯,开尼内酯。这项研究证明了单个 gRNA 介导的 CRISPR 平台在酵母中构建复杂代谢途径的有效性。

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