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掌握富含 GC 的产油酵母的靶向基因组工程,为食品和化工行业定制植物油脂替代品。

Mastering targeted genome engineering of GC-rich oleaginous yeast for tailored plant oil alternatives for the food and chemical sector.

机构信息

Department of Chemistry, Werner Siemens-Chair of Synthetic Biotechnology, Technical University of Munich, Garching, Germany.

出版信息

Microb Cell Fact. 2023 Feb 8;22(1):25. doi: 10.1186/s12934-023-02033-1.

Abstract

BACKGROUND

Sustainable production of triglycerides for various applications is a major focus of microbial factories. Oleaginous yeast species have been targeted for commercial production of microbial oils. Among all the oleaginous yeasts examined in a previous comparative study, Cutaneotrichosporon oleaginosus showed the highest lipid productivity. Moreover, a new lipid production process for C. oleaginosus with minimal waste generation and energy consumption resulted in the highest lipid productivity in the history of oleaginous yeasts. However, productivity and product diversity are restricted because of the genetic intractability of this yeast. To date, successful targeted genetic engineering of C. oleaginosus has not yet been reported.

RESULTS

The targeted gene editing was successfully carried out in C. oleaginosus using CRISPR/Cas system. A tailored enzyme system isolated to degrade the C. oleaginosus cell wall enabled the isolation of viable spheroplasts that are amenable to in-cell delivery of nucleic acids and proteins. The employment of both Cas9 protein and Cas mRNA was effective in obtaining strains with URA5 knockout that did not exhibit growth in the absence of uracil. Subsequently, we successfully created several strains with enhanced lipid yield (54% increase compared to that in wild type) or modified fatty acid profiles comparable with those of cocoa butter or sunflower oil compositions.

CONCLUSION

This study establishes the first targeted engineering technique for C. oleaginosus using the CRISPR/Cas system. The current study creates the foundation for flexible and targeted strain optimizations towards building a robust platform for sustainable microbial lipid production. Moreover, the genetic transformation of eukaryotic microbial cells using Cas9 mRNA was successfully achieved.

摘要

背景

可持续生产各种应用的甘油三酯是微生物工厂的主要关注点。产油酵母已成为微生物油商业生产的目标。在之前的一项比较研究中检查的所有产油酵母中,C. oleaginosus 的油脂生产力最高。此外,一种新的油脂生产工艺,C. oleaginosus 产生的废物和能源消耗最少,这导致了产油酵母历史上最高的油脂生产力。然而,由于该酵母的遗传难操作性,生产力和产品多样性受到限制。迄今为止,C. oleaginosus 的成功靶向遗传工程尚未报道。

结果

使用 CRISPR/Cas 系统成功地对 C. oleaginosus 进行了靶向基因编辑。一种专门用于降解 C. oleaginosus 细胞壁的定制酶系统使可分离的活原生质体能够进行核酸和蛋白质的细胞内传递。Cas9 蛋白和 Cas mRNA 的同时使用在获得URA5 敲除株方面非常有效,这些菌株在没有尿嘧啶的情况下无法生长。随后,我们成功地创建了几种产油量提高(比野生型提高 54%)或脂肪酸谱修饰的菌株,与可可脂或葵花籽油的组成相当。

结论

本研究使用 CRISPR/Cas 系统为 C. oleaginosus 建立了第一个靶向工程技术。目前的研究为使用 Cas9 mRNA 进行真核微生物细胞的遗传转化奠定了基础。此外,成功地实现了 Cas9 mRNA 对真核微生物细胞的遗传转化。这项研究为建立可持续微生物油脂生产的稳健平台提供了灵活和靶向的菌株优化基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a73f/9906925/401c3656e664/12934_2023_2033_Fig1_HTML.jpg

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