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Two CRISPR/Cas9 Systems Developed in Thermomyces dupontii and Characterization of Key Gene Functions in Thermolide Biosynthesis and Fungal Adaptation

机译:在Thermomyces Dupontii中开发的两个CRISPR / CAS9系统,并在热水醇类生物合成和真菌适应中表征关键基因功能

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Thermomyces dupontii , a widely distributed thermophilic fungus, is an ideal organism for investigating the mechanism of thermophilic fungal adaptation to diverse environments. However, genetic analysis of this fungus is hindered by a lack of available and efficient gene-manipulating tools. In this study, two different Cas9 proteins from mesophilic and thermophilic bacteria, with in vivo expression of a single guide RNA (sgRNA) under the control of tRNA~(Gly), were successfully adapted for genome editing in T. dupontii . We demonstrated the feasibility of applying these two gene editing systems to edit one or two genes in T. dupontii . The mesophilic CRISPR/Cas9 system displayed higher editing efficiency (50?to 86%) than the thermophilic CRISPR/Cas9 system (40?to?67%). However, the thermophilic CRISPR/Cas9 system was much less time-consuming than the mesophilic CRISPR/Cas9 system. Combining the CRISPR/Cas9 systems with homologous recombination, a constitutive promoter was precisely knocked in to activate a silent polyketide synthase-nonribosomal peptide synthase (PKS-NRPS) biosynthetic gene, leading to the production of extra metabolites that did not exist in the parental strains. Metabolic analysis of the generated biosynthetic gene mutants suggested that a key biosynthetic pathway existed for the biosynthesis of thermolides in T. dupontii , with the last two steps being different from those in the heterologous host Aspergillus . Further analysis suggested that these biosynthetic genes might be involved in fungal mycelial growth, conidiation, and spore germination, as well as in fungal adaptation to osmotic, oxidative, and cell wall-perturbing agents.IMPORTANCE Thermomyces represents a unique ecological taxon in fungi, but a lack of flexible genetic tools has greatly hampered the study of gene function in this taxon. The biosynthesis of potent nematicidal thermolides in T. dupontii remains largely unknown. In this study, mesophilic and thermophilic CRISPR/Cas9 gene editing systems were successfully established for both disrupting and activating genes in T. dupontii . In this study, a usable thermophilic CRISPR/Cas9 gene editing system derived from bacteria was constructed in thermophilic fungi. Chemical analysis of the mutants generated by these two gene editing systems identified the key biosynthetic genes and pathway for the biosynthesis of nematocidal thermolides in T. dupontii . Phenotype analysis and chemical stress experiments revealed potential roles of secondary metabolites or their biosynthetic genes in fungal development and adaption to chemical stress conditions. These two genomic editing systems will not only accelerate investigations into the biosynthetic mechanisms of unique natural products and functions of cryptic genes in T. dupontii but also offer an example for setting up CRISPR/Cas9 systems in other thermophilic fungi.
机译:Thermomyces Dupontii,一种广泛分布的嗜热真菌,是一种理想的生物,用于研究嗜热真菌适应对多种环境的机制。然而,这种真菌的遗传分析受到缺乏可用和有效的基因操纵工具的阻碍。在该研究中,在TRNA〜(GLY)的控制下,来自嗜苯胺和嗜热细菌的两种不同的Cas9蛋白,具有单一引导RNA(SGRNA)的体内表达,在T.Dupontii中成功地适用于基因组编辑。我们证明了应用这两个基因编辑系统在T.Dupontii中编辑一个或两个基因的可行性。嗜可能的CRISPR / CAS9系统比热嗜热克切/ CAS9系统(40?至67%)显示更高的编辑效率(50?至86%)。然而,嗜热克隆/ Cas9系统比嗜苯酚CREP / Cas9系统少耗时。将CRISPR / CAS9系统与同源重组结合,精确敲入了组成型启动子以激活沉默的聚酮合成酶 - 非纤维素肽合酶(PKS-NRP)生物合成基因,导致额外代谢物的产生不存在于父母菌株中。生成的生物合成基因突变体的代谢分析表明,在T.Dupontii的热水醇类生物合成中存在关键的生物合成途径,最后两个步骤与异源宿主曲霉中的最终步骤不同。进一步的分析表明,这些生物合成基因可能涉及真菌菌丝生长,共复合和孢子萌发,以及对渗透渗透,氧化和细胞壁扰动剂的真菌适应。分析Thermomyces代表真菌的独特生态分类,但是缺乏柔性的遗传工具极大地阻碍了这种分类群体的基因功能研究。 T.Dupontii中有效的象征热醇的生物合成在很大程度上是未知的。在该研究中,成功​​地建立了嗜苯胺和嗜热克隆/ CAS9基因编辑系统,用于杜普蒂伊中的破坏和活化基因。在这项研究中,在嗜热真菌中构建了衍生自细菌的可用的热嗜热克拉斯Cas9基因编辑系统。由这两个基因编辑系统产生的突变体的化学分析鉴定了在杜邦II的Nematical Thermolide的生物合成的关键生物合成基因和途径。表型分析和化学胁迫实验揭示了次级代谢物或其生物合成基因在真菌发育和适应化学胁迫条件下的潜在作用。这两个基因组编辑系统不仅会加速调查T.Dupontii中独特的天然产物和隐秘基因功能的生物合成机制,而且还提供了一个用于在其他嗜热真菌中建立CRISPR / CAS9系统的示例。

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