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Development of a CRISPR-Cas9 System for Efficient Genome Editing of Candida lusitaniae

机译:用于卢丝假丝酵母基因组编辑的CRISPR-Cas9系统的开发

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Candida lusitaniae is a member of the Candida clade that includes a diverse group of fungal species relevant to both human health and biotechnology. This species exhibits a full sexual cycle to undergo interconversion between haploid and diploid forms. C.?lusitaniae is also an emerging opportunistic pathogen that can cause serious bloodstream infections in the clinic and yet has often proven to be refractory to facile genetic manipulations. In this work, we develop a clustered regularly interspaced short palindromic repeat (CRISPR) and CRISPR-associated gene 9 (Cas9) system to enable genome editing of C.?lusitaniae . We demonstrate that expression of CRISPR-Cas9 components under species-specific promoters is necessary for efficient gene targeting and can be successfully applied to multiple genes in both haploid and diploid isolates. Gene deletion efficiencies with CRISPR-Cas9 were further enhanced in C.?lusitaniae strains lacking the established nonhomologous end joining (NHEJ) factors Ku70 and DNA ligase 4. These results indicate that NHEJ plays an important role in directing the repair of DNA double-strand breaks (DSBs) in C.?lusitaniae and that removal of this pathway increases integration of gene deletion templates by homologous recombination. The described approaches significantly enhance the ability to perform genetic studies in, and promote understanding of, this emerging human pathogen and model sexual species. IMPORTANCE The ability to perform efficient genome editing is a key development for detailed mechanistic studies of a species. Candida lusitaniae is an important member of the Candida clade and is relevant both as an emerging human pathogen and as a model for understanding mechanisms of sexual reproduction. We highlight the development of a CRISPR-Cas9 system for efficient genome manipulation in C.?lusitaniae and demonstrate the importance of species-specific promoters for expression of CRISPR components. We also demonstrate that the NHEJ pathway contributes to non-template-mediated repair of DNA DSBs and that removal of this pathway enhances efficiencies of gene targeting by CRISPR-Cas9. These results therefore establish important genetic tools for further exploration of C.?lusitaniae biology.
机译:lusitaniae念珠菌是念珠菌进化枝的成员,其中包括与人类健康和生物技术有关的多种真菌物种。该物种表现出完整的性周期,经历单倍体和二倍体形式之间的相互转化。纤体梭状芽胞杆菌也是一种新兴的机会病原体,可以在临床中引起严重的血液感染,但经常被证明对简便的基因操作难以控制。在这项工作中,我们开发了一个聚簇的规则间隔的短回文重复序列(CRISPR)和CRISPR相关基因9(Cas9)系统,以实现纤毛念珠菌的基因组编辑。我们证明在物种特异性启动子下表达CRISPR-Cas9组件对于有效的基因靶向是必要的,并且可以成功地应用于单倍体和二倍体分离物中的多个基因。在缺乏已建立的非同源末端连接(NHEJ)因子Ku70和DNA连接酶4的纤支线虫菌株中,CRISPR-Cas9的基因缺失效率得到了进一步提高。这些结果表明,NHEJ在指导DNA双链修复中起着重要作用。 C.lusitaniae断裂(DSBs),并且该途径的去除通过同源重组增加了基因缺失模板的整合。所描述的方法大大增强了在这种新兴的人类病原体和模型性物种中进行基因研究的能力,并增进了对这种现象的理解。重要信息进行有效的基因组编辑的能力是对物种进行详细机械研究的关键发展。 lusitaniae念珠菌是念珠菌进化枝的重要成员,它既是新兴的人类病原体,又是理解性生殖机制的模型。我们重点介绍了在纤毛衣藻中有效进行基因组操作的CRISPR-Cas9系统的开发,并展示了物种特异性启动子对于CRISPR组件表达的重要性。我们还证明了NHEJ通路有助于DNA DSB的非模板介导的修复,并且该通路的去除增强了CRISPR-Cas9靶向基因的效率。因此,这些结果建立了重要的遗传工具,用于进一步探索纤毛衣藻的生物学。

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