State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.
University of Chinese Academy of Sciences, Beijing, China.
Microb Biotechnol. 2022 Nov;15(11):2730-2743. doi: 10.1111/1751-7915.14131. Epub 2022 Aug 16.
Alkaliphiles are considered more suitable chassis than traditional neutrophiles due to their excellent resistance to microbial contamination. Alkaliphilic Bacillus sp. N16-5, an industrially interesting strain with great potential for the production of lactic acid and alkaline polysaccharide hydrolases, can only be engineered genetically by the laborious and time-consuming homologous recombination. In this study, we reported the successful development of a CRISPR/Cas9-based genome editing system with high efficiency for single-gene deletion, large gene fragment deletion and exogenous DNA chromosomal insertion. Moreover, based on a catalytically dead variant of Cas9 (dCas9), we also developed a CRISPRi system to efficiently regulate gene expression. Finally, this efficient genome editing system was successfully applied to engineer the xylose metabolic pathway for the efficient bioproduction of D-lactic acid. Compared with the wild-type Bacillus sp. N16-5, the final engineered strain with XylR deletion and AraE overexpression achieved 34.3% and 27.7% increases in xylose consumption and D-lactic acid production respectively. To our knowledge, this is the first report on the development and application of CRISPR/Cas9-based genome editing system in alkaliphilic Bacillus, and this study will significantly facilitate functional genomic studies and genome manipulation in alkaliphilic Bacillus, laying a foundation for the development of more robust microbial chassis.
由于耐微生物污染能力强,嗜堿菌被认为比传统的嗜中性菌更适合作为底盘细胞。具有生产乳酸和堿性多糖水解酶巨大潜力的工业上有趣的嗜堿芽孢杆菌 N16-5 菌株,只能通过费力且耗时的同源重组进行基因工程改造。在本研究中,我们成功开发了一种高效的基于 CRISPR/Cas9 的基因组编辑系统,可用于单基因缺失、大片段基因缺失和外源 DNA 染色体插入。此外,基于一种无催化活性的 Cas9(dCas9)变体,我们还开发了一种 CRISPRi 系统来高效调控基因表达。最后,该高效基因组编辑系统成功应用于工程化木糖代谢途径,以高效生物合成 D-乳酸。与野生型芽孢杆菌 N16-5 相比,XylR 缺失和 AraE 过表达的最终工程菌株分别提高了 34.3%和 27.7%的木糖消耗和 D-乳酸产量。据我们所知,这是首次在嗜堿芽孢杆菌中开发和应用基于 CRISPR/Cas9 的基因组编辑系统的报道,该研究将极大地促进嗜堿芽孢杆菌的功能基因组学研究和基因组操作,为开发更稳健的微生物底盘奠定基础。