A CRISPR Cas12a/Cpf1 strategy to facilitate robust multiplex gene editing in Aspergillus Niger.

Q1 Agricultural and Biological Sciences
Abel Peter van Esch, Samuel Mathew Maurice Prudence, Fabiano Jares Contesini, Bernd Gerhartz, Kate Elizabeth Royle, Uffe Hasbro Mortensen
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引用次数: 0

Abstract

Background: CRISPR technologies have revolutionized strain engineering of Aspergillus species, and drastically increased the ease and speed at which genomic modifications can be performed. One of the advantages of CRISPR technologies is the possibility of rapid strain engineering using multiplex experiments. This can be achieved by using a set of different guiding RNA molecules (gRNA) to target multiple loci in the same experiment. Two major challenges in such experiments are firstly, the delivery of multiple guides simultaneously, and secondly, ensuring that each target locus is cut efficiently by the CRISPR nuclease. The CRISPR nuclease Cas12a, also known as Cpf1, presents a unique advantage to bypass this challenge. Specifically, and unlike Cas9, Cpf1 is able to release several gRNAs from a common precursor RNA molecule through its own RNase activity, eliminating the need for elements such as ribozymes or tRNA machinery for gRNA maturation. This feature sets the stage for much more straightforward construction of vectors for the delivery of many gRNAs, which in turn allows each locus to be targeted by multiple gRNAs to increase the odds of successfully inducing a break in the DNA.

Results: Here we present a toolbox that can be used to assemble plasmids containing a gRNA multiplex expression cassette, which is able to express a multi gRNA precursor. The precursor can be processed via Cpf1 RNase activity to produce multiple functional gRNAs in vivo. Using our setup, we have constructed plasmids that are able to deliver up to ten gRNAs. In addition, we show that three simultaneous deletions can be introduced robustly in Aspergillus niger by targeting each gene with several gRNAs, without prior gRNA validation or the use of genomically integrated selection markers.

Conclusion: In this study we have established an efficient system for the construction of CRISPR-Cpf1 vectors that are able to deliver a large number of gRNAs for multiplex genome editing in Aspergillus species. Our strategy allows multiple specific genomic modifications to be performed in a time frame of less than two weeks, and we envision this will be able to speed up cell factory construction efforts significantly.

CRISPR Cas12a/Cpf1策略在黑曲霉中促进强大的多重基因编辑
背景:CRISPR技术已经彻底改变了曲霉物种的菌株工程,并大大提高了基因组修饰的便利性和速度。CRISPR技术的优点之一是可以使用多重实验进行快速应变工程。这可以通过在同一实验中使用一组不同的引导RNA分子(gRNA)来靶向多个基因座来实现。这类实验面临的两个主要挑战是:首先,同时递送多个向导;其次,确保每个目标位点都被CRISPR核酸酶有效地切割。CRISPR核酸酶Cas12a,也被称为Cpf1,具有独特的优势来绕过这一挑战。具体来说,与Cas9不同的是,Cpf1能够通过自身的RNase活性从一个共同的前体RNA分子中释放出几种gRNA,从而消除了gRNA成熟所需的核酶或tRNA机制等元素。这一特征为更直接地构建用于递送许多grna的载体奠定了基础,这反过来又允许多个grna靶向每个位点,以增加成功诱导DNA断裂的几率。结果:在这里,我们提出了一个工具箱,可以用来组装含有gRNA多重表达盒的质粒,它能够表达多个gRNA前体。该前体可在体内通过Cpf1 RNase活性加工产生多种功能性gRNAs。使用我们的设置,我们已经构建了能够传递多达10个grna的质粒。此外,研究人员发现,在黑曲霉中,不需要事先验证gRNA或使用基因组整合选择标记,就可以用几个gRNA靶向每个基因,从而在黑曲霉中引入三个同时缺失。结论:本研究建立了一套高效的CRISPR-Cpf1载体构建体系,该载体能够在曲霉种中传递大量的grna进行多重基因组编辑。我们的策略允许在不到两周的时间框架内完成多个特定的基因组修饰,我们设想这将能够大大加快细胞工厂的建设工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Fungal Biology and Biotechnology
Fungal Biology and Biotechnology Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
10.20
自引率
0.00%
发文量
17
审稿时长
9 weeks
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