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利用基于流式细胞术的高通量筛选在解脂耶氏酵母中快速基因靶向跟踪以提高β-胡萝卜素的产量。

Rapid Gene Target Tracking for Enhancing β-Carotene Production Using Flow Cytometry-Based High-Throughput Screening in Yarrowia lipolytica.

机构信息

State Key Laboratory of Microbial Technology, Shandong Universitygrid.27255.37, Qingdao, P. R. China.

出版信息

Appl Environ Microbiol. 2022 Oct 11;88(19):e0114922. doi: 10.1128/aem.01149-22. Epub 2022 Sep 12.

Abstract

β-Carotene is a provitamin A precursor and an important antioxidant that is used widely in the aquaculture, food, cosmetic, and pharmaceutical industries. Oleaginous Yarrowia lipolytica has been demonstrated as a competitive producer microorganism for the production of hydrophobic β-carotene through rational engineering strategies. However, the limited understanding of the complexity of the metabolic network between carotenoid biosynthesis and other cellular processes has hampered further advancement. Genome-scale mutagenesis and high-throughput screening of mutagenesis libraries have been extensively employed in gene mining or in the identification of key targets associated with particular phenotypes. In this study, we developed a fluorescence-activated cell-sorting approach for the effective high-throughput screening of high-β-carotene-producing strains. Using this approach, millions of mutants were screened rapidly, and new gene targets involved in lipid metabolism, sterol metabolism, signal transduction, and stress response were identified. The disruption of the genes affecting fatty acid oxidation, lipid composition, and sterol transcriptional regulation (4CL-8, GCS, and YIsterTF) increased β-carotene significantly. By engineering these targets in a high-β-carotene production, a strain that produced 9.4 g/L β-carotene was constructed. Here, we used a flow cytometry approach to improve screening efficiency and eliminate the interference of intermediate metabolites. The targets obtained in this study can be used in studies focusing on metabolic engineering in the future for improving carotenoid production. β-Carotene is a high-value-added product that is widely used in the aquaculture, food, cosmetic, and pharmaceutical industries. In our previous study, Yarrowia lipolytica has been engineered extensively to produce β-carotene. To further improve its production, high-throughput screening and the identification of new beneficial gene targets are required. Herein, we developed a fluorescence-activated cell-sorting approach for the effective high-throughput screening of high-β-carotene-producing strains. Using this approach, millions of mutants were screened rapidly, and new gene targets involved in lipid metabolism, sterol metabolism, signal transduction, and stress response were identified. The disruption of the genes affecting fatty acid oxidation, lipid composition, and sterol transcriptional regulation (4CL-8, GCS, and YIsterTF) increased β-carotene significantly. By engineering these targets in a high-β-carotene production, a strain that produced 9.4 g/L β-carotene was constructed.

摘要

β-胡萝卜素是一种维生素 A 前体和重要的抗氧化剂,广泛应用于水产养殖、食品、化妆品和制药行业。已经证明产油解脂耶氏酵母是一种有竞争力的生产微生物,通过合理的工程策略生产疏水性β-胡萝卜素。然而,对类胡萝卜素生物合成与其他细胞过程之间代谢网络的复杂性的有限理解阻碍了进一步的发展。基因组规模的诱变和高通量筛选突变文库已广泛应用于基因挖掘或与特定表型相关的关键靶标的鉴定。在这项研究中,我们开发了一种荧光激活细胞分选方法,用于有效高通量筛选高β-胡萝卜素产生菌株。使用这种方法,我们可以快速筛选数以百万计的突变体,并鉴定新的与脂质代谢、固醇代谢、信号转导和应激反应相关的关键基因目标。干扰影响脂肪酸氧化、脂质组成和固醇转录调控的基因(4CL-8、GCS 和 YIsterTF)显著增加了β-胡萝卜素的产量。通过在高β-胡萝卜素生产中对这些目标进行工程改造,构建了一株生产 9.4 g/Lβ-胡萝卜素的工程菌。在这里,我们使用流式细胞术方法来提高筛选效率并消除中间代谢物的干扰。本研究中获得的目标可用于未来的代谢工程研究,以提高类胡萝卜素的产量。β-胡萝卜素是一种高附加值产品,广泛应用于水产养殖、食品、化妆品和制药行业。在我们之前的研究中,已经对产油解脂耶氏酵母进行了广泛的工程改造以生产β-胡萝卜素。为了进一步提高其产量,需要高通量筛选和鉴定新的有益基因目标。在这里,我们开发了一种荧光激活细胞分选方法,用于有效高通量筛选高β-胡萝卜素产生菌株。使用这种方法,我们可以快速筛选数以百万计的突变体,并鉴定新的与脂质代谢、固醇代谢、信号转导和应激反应相关的基因目标。干扰影响脂肪酸氧化、脂质组成和固醇转录调控的基因(4CL-8、GCS 和 YIsterTF)显著增加了β-胡萝卜素的产量。通过在高β-胡萝卜素生产中对这些目标进行工程改造,构建了一株生产 9.4 g/Lβ-胡萝卜素的工程菌。

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