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Establishment and application of a CRISPR–Cas12a assisted genome-editing system in Zymomonas mobilis

机译:运动发酵单胞菌中CRISPR–Cas12a辅助基因组编辑系统的建立和应用

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Efficient and convenient genome-editing toolkits can expedite genomic research and strain improvement for desirable phenotypes. Zymomonas mobilis is a highly efficient ethanol-producing bacterium with a small genome size and desirable industrial characteristics, which makes it a promising chassis for biorefinery and synthetic biology studies. While classical techniques for genetic manipulation are available for Z. mobilis, efficient genetic engineering toolkits enabling rapidly systematic and high-throughput genome editing in Z. mobilis are still lacking. Using Cas12a (Cpf1) from Francisella novicida, a recombinant strain with inducible cas12a expression for genome editing was constructed in Z. mobilis ZM4, which can be used to mediate RNA-guided DNA cleavage at targeted genomic loci. gRNAs were then designed targeting the replicons of native plasmids of ZM4 with about 100% curing efficiency for three native plasmids. In addition, CRISPR–Cas12a recombineering was used to promote gene deletion and insertion in one step efficiently and precisely with efficiency up to 90%. Combined with single-stranded DNA (ssDNA), CRISPR–Cas12a system was also applied to introduce minor nucleotide modification precisely into the genome with high fidelity. Furthermore, the CRISPR–Cas12a system was employed to introduce a heterologous lactate dehydrogenase into Z. mobilis with a recombinant lactate-producing strain constructed. This study applied CRISPR–Cas12a in Z. mobilis and established a genome editing tool for efficient and convenient genome engineering in Z. mobilis including plasmid curing, gene deletion and insertion, as well as nucleotide substitution, which can also be employed for metabolic engineering to help divert the carbon flux from ethanol production to other products such as lactate demonstrated in this work. The CRISPR–Cas12a system established in this study thus provides a versatile and powerful genome-editing tool in Z. mobilis for functional genomic research, strain improvement, as well as synthetic microbial chassis development for economic biochemical production.
机译:高效便捷的基因组编辑工具包可以加快基因组研究和菌株改良,以实现理想的表型。运动发酵单胞菌(Zymomonas mobilis)是一种高效的产乙醇细菌,具有小的基因组大小和理想的工业特性,这使其成为用于生物精炼和合成生物学研究的有前途的底盘。尽管运动发酵单胞菌可以使用经典的基因操作技术,但仍缺乏能在运动发酵单胞菌中快速进行系统且高通量的基因组编辑的有效基因工程工具包。利用来自弗朗西斯菌的Cas12a(Cpf1),在运动发酵单胞菌ZM4中构建了具有可诱导的cas12a表达用于基因组编辑的重组菌株,该菌株可用于介导靶向基因组位点的RNA引导的DNA切割。然后设计针对ZM4天然质粒复制子的gRNA,对三种天然质粒的治愈效率约为100%。此外,CRISPR–Cas12a重组用于一步一步高效准确地促进基因缺失和插入,效率高达90%。 CRISPR–Cas12a系统与单链DNA(ssDNA)相结合,还被用于以高保真度将微小的核苷酸修饰精确地引入基因组。此外,使用CRISPR–Cas12a系统将异源乳酸脱氢酶引入到运动发酵单胞菌中,并构建了重组产生乳酸的菌株。这项研究在运动发酵单胞菌中应用了CRISPR–Cas12a,并建立了一个基因组编辑工具,用于在运动发酵单胞菌中进行高效便捷的基因组工程设计,包括质粒固化,基因缺失和插入以及核苷酸取代,也可以用于代谢工程学。有助于将乙醇生产中的碳通量转移到本产品中证明的其他产品(如乳酸)。因此,本研究中建立的CRISPR–Cas12a系统为运动发酵单胞菌提供了一种功能强大的多功能基因组编辑工具,用于功能基因组研究,菌株改良以及合成的微生物底盘开发,以实现经济的生化生产。

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