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A CRISPR Interference Platform for Efficient Genetic Repression in Candida albicans

机译:用于白色念珠菌的高效遗传抑制的CRISPR干扰平台

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Fungal pathogens are emerging as an important cause of human disease, and Candida albicans is among the most common causative agents of fungal infections. Studying this fungal pathogen is of the utmost importance and necessitates the development of molecular technologies to perform comprehensive genetic and functional genomic analysis. Here, we designed and developed a novel clustered regularly interspaced short palindromic repeat interference (CRISPRi) system for targeted genetic repression in C. albicans . We engineered a nuclease-dead Cas9 (dCas9) construct that, paired with a guide RNA targeted to the promoter of an endogenous gene, is capable of targeting that gene for transcriptional repression. We further optimized a favorable promoter locus to achieve repression and demonstrated that fusion of dCas9 to an Mxi1 repressor domain was able to further enhance transcriptional repression. Finally, we demonstrated the application of this CRISPRi system through genetic repression of the essential molecular chaperone HSP90 . This is the first demonstration of a functional CRISPRi repression system in C. albicans , and this valuable technology will enable many future applications in this critical fungal pathogen. IMPORTANCE Fungal pathogens are an increasingly important cause of human disease and mortality, and Candida albicans is among the most common causes of fungal disease. Studying this important fungal pathogen requires a comprehensive genetic toolkit to establish how different genetic factors play roles in the biology and virulence of this pathogen. Here, we developed a CRISPR-based genetic regulation platform to achieve targeted repression of C. albicans genes. This CRISPR interference (CRISPRi) technology exploits a nuclease-dead Cas9 protein (dCas9) fused to transcriptional repressors. The dCas9 fusion proteins pair with a guide RNA to target genetic promoter regions and to repress expression from these genes. We demonstrated the functionality of this system for repression in C. albicans and show that we can apply this technology to repress essential genes. Taking the results together, this work presents a new technology for efficient genetic repression in C. albicans , with important applications for genetic analysis in this fungal pathogen.
机译:真菌病原体正在成为人类疾病的重要原因,白色念珠菌是最常见的真菌感染病原体。研究这种真菌病原体至关重要,需要开发分子技术以进行全面的遗传和功能基因组分析。在这里,我们设计和开发了一种新颖的,有规律地间隔的短回文重复干扰(CRISPRi)系统,用于白色念珠菌的靶向遗传抑制。我们设计了一种核酸酶死亡的Cas9(dCas9)构建体,该构建体与靶向内源基因启动子的引导RNA配对,能够靶向该基因进行转录抑制。我们进一步优化了有利的启动子位点以实现阻遏,并证明了dCas9与Mxi1阻遏域的融合能够进一步增强转录阻遏。最后,我们通过对必需分子伴侣HSP90的遗传抑制来证明该CRISPRi系统的应用。这是白色念珠菌中功能性CRISPRi抑制系统的首次展示,这项有价值的技术将使这一重要的真菌病原体有许多未来的应用。重要信息真菌病原体是人类疾病和死亡的日益重要的原因,白色念珠菌是真菌病的最常见原因。研究这种重要的真菌病原体需要一个综合的遗传工具包,以建立不同的遗传因素如何在该病原体的生物学和毒力中发挥作用。在这里,我们开发了一个基于CRISPR的遗传调控平台,以实现对白色念珠菌基因的靶向抑制。这项CRISPR干扰(CRISPRi)技术利用了与转录阻遏物融合的核酸酶死亡的Cas9蛋白(dCas9)。 dCas9融合蛋白与引导RNA配对以靶向基因启动子区域并抑制这些基因的表达。我们展示了该系统用于抑制白色念珠菌的功能,并表明我们可以应用该技术抑制必需基因。综合这些结果,这项工作提出了一种有效的白色念珠菌遗传抑制新技术,并在这种真菌病原体的遗传分析中具有重要的应用。

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