利用crispr相关转座酶进行多拷贝染色体整合的细胞编程。

IF 3.7 4区 生物学 Q2 GENETICS & HEREDITY
Yiwen Zhang, Jiawei Yang, Siqi Yang, Jieze Zhang, Jun Chen, Rongsheng Tao, Yu Jiang, Junjie Yang, Sheng Yang
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引用次数: 11

摘要

定向进化和靶向基因组编辑已被用于创造具有有用改变表型的遗传变异。然而,这些方法仅限于高通量筛选方法或单基因的串行操作。在这项研究中,我们利用crispr相关转座酶(MUCICAT)实现了多拷贝染色体整合,同时靶向大肠杆菌染色体上多达11个位点进行多重基因中断和/或插入,从而产生组合基因组多样性。MUCICAT系统通过替换异丙基- β -d -硫代半乳糖苷(IPTG)依赖的启动子来解耦基因编辑和产物合成,并截断右端以减少cargo的泄漏表达。我们利用MUCICAT设计并优化了大肠杆菌中n -乙酰氨基葡萄糖(GlcNAc)的生物合成途径,仅在8天内就过量生产了工业上重要的GlcNAc。两轮转化,第一轮为两个降解途径相关的基因簇的破坏,第二轮为GlcNAc基因盒的多重整合,将产生一个包含1-11个GlcNAc磁带拷贝的文库。我们分离出一个最好的变体,含有5个拷贝的GlcNAc磁带,产生11.59 g/L的GlcNAc,比含有pET-GNAc质粒的菌株的产量高6倍以上。MUCICAT有潜力成为细胞编程的有力工具,并可广泛应用于合成生物学等许多领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Programming Cells by Multicopy Chromosomal Integration Using CRISPR-Associated Transposases.

Directed evolution and targeted genome editing have been deployed to create genetic variants with usefully altered phenotypes. However, these methods are limited to high-throughput screening methods or serial manipulation of single genes. In this study, we implemented multicopy chromosomal integration using CRISPR-associated transposases (MUCICAT) to simultaneously target up to 11 sites on the Escherichia coli chromosome for multiplex gene interruption and/or insertion, generating combinatorial genomic diversity. The MUCICAT system was improved by replacing the isopropyl-beta-D-thiogalactoside (IPTG)-dependent promoter to decouple gene editing and product synthesis and truncating the right end to reduce the leakage expression of cargo. We applied MUCICAT to engineer and optimize the N-acetylglucosamine (GlcNAc) biosynthesis pathway in E. coli to overproduce the industrially important GlcNAc in only 8 days. Two rounds of transformation, the first round for disruption of two degradation pathways related gene clusters and the second round for multiplex integration of the GlcNAc gene cassette, would generate a library with 1-11 copies of the GlcNAc cassette. We isolated a best variant with five copies of GlcNAc cassettes, producing 11.59 g/L GlcNAc, which was more than sixfold than that of the strain containing the pET-GNAc plasmid. Our multiplex approach MUCICAT has potential to become a powerful tool of cell programing and can be widely applied in many fields such as synthetic biology.

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来源期刊
CRISPR Journal
CRISPR Journal Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.30
自引率
2.70%
发文量
76
期刊介绍: In recognition of this extraordinary scientific and technological era, Mary Ann Liebert, Inc., publishers recently announced the creation of The CRISPR Journal -- an international, multidisciplinary peer-reviewed journal publishing outstanding research on the myriad applications and underlying technology of CRISPR. Debuting in 2018, The CRISPR Journal will be published online and in print with flexible open access options, providing a high-profile venue for groundbreaking research, as well as lively and provocative commentary, analysis, and debate. The CRISPR Journal adds an exciting and dynamic component to the Mary Ann Liebert, Inc. portfolio, which includes GEN (Genetic Engineering & Biotechnology News) and more than 80 leading peer-reviewed journals.
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