诱导调节同源重组使得精确的基因组编辑在毕赤酵母不扰乱细胞适应性。

IF 14.3 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Fan Bai, Peng Cai, Lun Yao, Yiwei Shen, Yunxia Li, Yongjin J Zhou
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引用次数: 0

摘要

甲基营养酵母毕赤酵母(也称为Komagataella pastoris)是生产蛋白质和天然产物的理想宿主。增强同源重组(homologous recombination, HR)有助于提高基因组编辑的精度,但会对细胞适应度造成压力,不利于产业化应用。为了克服这些挑战,我们建立了一个四环素抑制蛋白(TetR)/tetO2诱导系统来动态调节巴氏酵母中hr相关基因RAD52。该方法将单基因缺失阳性率显著提高至81%。此外,诱导过表达内源性MUS81-MMS4导致多基因的高效基因组组装(81%)。该诱导体系在不同培养基中对细胞生长没有不利影响,与组成型过表达hr相关基因的菌株相比,甲醇产生的脂肪醇更多。我们预计,这种可诱导的调控适用于在不影响细胞适应性的情况下,增强巴斯德酵母和其他非常规微生物的HR,以进行精确的基因组编辑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inducible regulating homologous recombination enables precise genome editing in Pichia pastoris without perturbing cellular fitness.

The methylotrophic yeast Pichia pastoris (also known as Komagataella pastoris) is an ideal host for producing proteins and natural products. Enhancing homologous recombination (HR) is helpful for improving the precision of genome editing, but results in stress to cellular fitness and is harmful for industrial applications. To overcome these challenges, we developed a tetracycline repressor protein (TetR)/tetO2 inducible system to dynamically regulate the HR-related gene RAD52 in P. pastoris. This approach significantly improved the positivity rate of single gene deletion to 81%. Furthermore, inducible overexpression of endogenous MUS81-MMS4 resulted in high-efficiency (81%) genome assembly of multiple genes. This inducible system had no adverse effect on cell growth in different media and resulted in greater fatty alcohol production from methanol compared with a strain constitutively overexpressing HR-related genes. We anticipate that this inducible regulation is applicable for enhancing HR for precise genome editing in P. pastoris and other non-conventional microbes without compromising cellular fitness.

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来源期刊
Trends in biotechnology
Trends in biotechnology 工程技术-生物工程与应用微生物
CiteScore
28.60
自引率
1.20%
发文量
198
审稿时长
1 months
期刊介绍: Trends in Biotechnology publishes reviews and perspectives on the applied biological sciences, focusing on useful science applied to, derived from, or inspired by living systems. The major themes that TIBTECH is interested in include: Bioprocessing (biochemical engineering, applied enzymology, industrial biotechnology, biofuels, metabolic engineering) Omics (genome editing, single-cell technologies, bioinformatics, synthetic biology) Materials and devices (bionanotechnology, biomaterials, diagnostics/imaging/detection, soft robotics, biosensors/bioelectronics) Therapeutics (biofabrication, stem cells, tissue engineering and regenerative medicine, antibodies and other protein drugs, drug delivery) Agroenvironment (environmental engineering, bioremediation, genetically modified crops, sustainable development).
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