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Multiple Applications of a Transient CRISPR-Cas9 Coupled with Electroporation (TRACE) System in the Cryptococcus neoformans Species Complex

机译:瞬时CRISPR-Cas9偶联电穿孔(TRACE)系统在新型隐球菌物种复合体中的多种应用

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摘要

Cryptococcus neoformans is a fungal pathogen that claims hundreds of thousands of lives annually. Targeted genetic manipulation through biolistic transformation in C. neoformans drove the investigation of this clinically important pathogen at the molecular level. Although costly and inefficient, biolistic transformation remains the major method for editing the Cryptococcus genome as foreign DNAs introduced by other methods such as electroporation are predominantly not integrated into the genome. Although the majority of DNAs introduced by biolistic transformation are stably inherited, the transformation efficiency and the homologous integration rate (∼1–10%) are low. Here, we developed a Transient CRISPR (clustered regularly interspaced short palindromic repeat)-Cas9 coupled with Electroporation (TRACE) system for targeted genetic manipulations in the C. neoformans species complex. This method took advantages of efficient genome integration due to double-strand breaks created at specific sites by the transient CRISPR-Cas9 system and the high transformation efficiency of electroporation. We demonstrated that TRACE can efficiently generate precise single-gene deletion mutants using the ADE2 locus as an example. This system can also effectively delete multiple genes in a single transformation, as evident by the successful generation of quadruple mfα1Δ2Δ3Δ4Δ mutants. In addition to generating gene deletion mutants, we complemented the ade2Δ mutant by integrating a wild-type ADE2 allele at the “safe haven” region (SH2) via homologous recombination using TRACE. Interestingly, introduced DNAs can be inserted at a designated genetic site without any homologous sequences, opening up numerous other applications. We expect that TRACE, an efficient, versatile, and cost-effective gene editing approach, will greatly accelerate research in this field.
机译:新型隐球菌是一种真菌病原体,每年夺去数十万人的生命。通过新孢子虫的生物射弹转化进行有针对性的遗传操作,推动了在分子水平上对该临床重要病原体的研究。尽管成本高昂且效率低下,但是由于通过其他方法(例如电穿孔)引入的外源DNA大多未整合到基因组中,因此,生物弹弹转化仍是编辑隐球菌基因组的主要方法。尽管通过基因枪转化法引入的大多数DNA都是稳定遗传的,但转化效率和同源整合率较低(约1-10%)。在这里,我们开发了一种瞬态CRISPR(聚类的规则间隔的短回文重复序列)-Cas9,并结合了电穿孔(TRACE)系统,用于新福建梭菌物种复合体中的靶向遗传操作。由于瞬时CRISPR-Cas9系统在特定位点产生双链断裂以及电穿孔的高转化效率,该方法利用了有效的基因组整合优势。我们证明TRACE可以使用ADE2基因座为例有效地产生精确的单基因缺失突变体。该系统还可以在一次转化中有效删除多个基因,这可以通过成功生成四倍的mfα1Δ2Δ3Δ4Δ突变体来证明。除了生成基因缺失突变体,我们还通过使用TRACE同源重组在“安全港”区域(SH2)整合了野生型ADE2等位基因,对ade2Δ突变体进行了补充。有趣的是,可以将引入的DNA插入没有任何同源序列的指定遗传位点,从而开辟了许多其他应用。我们希望TRACE是一种高效,通用且具有成本效益的基因编辑方法,将大大加快该领域的研究。

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