利用内源性 I 型和 III 型 CRISPR-Cas 系统对极端嗜热菌 Thermus thermophilus 进行高效基因组编辑。

IF 4.5 Q1 MICROBIOLOGY mLife Pub Date : 2022-12-07 eCollection Date: 2022-12-01 DOI:10.1002/mlf2.12045
Jinting Wang, Junwei Wei, Haijuan Li, Yingjun Li
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引用次数: 0

摘要

嗜热菌(Thermus thermophilus)因其珍贵的天然产品、丰富的嗜热酶和良好的发酵能力而成为生物产业中极具吸引力的物种。然而,目前还没有适用于该菌种的高效、多功能基因组编辑工具。在本研究中,我们基于嗜热菌 HB27 的内源性 I-B、I-C 和 III-A/B 型 CRISPR-Cas 系统,为其开发了一种高效的基因组编辑工具。首先,我们系统地描述了嗜热菌HB27中不同类型原生CRISPR-Cas系统的DNA干扰能力。我们发现,通过一系列携带人工自靶向微型CRISPR和负责重组恢复的供体DNA的基因组编辑质粒,可以轻松实现基因缺失、突变和原位标记等基因组操作。我们还比较了不同 CRISPR-Cas 系统和带有不同长度供体 DNA 的编辑质粒的基因组编辑效率。此外,我们还开发了基于热稳定β-半乳糖苷酶基因TTP0042的嗜热菌报告基因系统,并通过基因组改造构建了高产超氧化物歧化酶的工程菌株。
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High-efficiency genome editing of an extreme thermophile Thermus thermophilus using endogenous type I and type III CRISPR-Cas systems.

Thermus thermophilus is an attractive species in the bioindustry due to its valuable natural products, abundant thermophilic enzymes, and promising fermentation capacities. However, efficient and versatile genome editing tools are not available for this species. In this study, we developed an efficient genome editing tool for T. thermophilus HB27 based on its endogenous type I-B, I-C, and III-A/B CRISPR-Cas systems. First, we systematically characterized the DNA interference capabilities of the different types of the native CRISPR-Cas systems in T. thermophilus HB27. We found that genomic manipulations such as gene deletion, mutation, and in situ tagging could be easily implemented by a series of genome-editing plasmids carrying an artificial self-targeting mini-CRISPR and a donor DNA responsible for the recombinant recovery. We also compared the genome editing efficiency of different CRISPR-Cas systems and the editing plasmids with donor DNAs of different lengths. Additionally, we developed a reporter gene system for T. thermophilus based on a heat-stable β-galactosidase gene TTP0042, and constructed an engineered strain with a high production capacity of superoxide dismutases by genome modification.

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