Mans Robert, van Rossum Harmen M, Wijsman Melanie, Backx Antoon, Kuijpers Niels G A, van den Broek Marcel, Daran-Lapujade Pascale, Pronk Jack T, van Maris Antonius J A, Daran Jean-Marc G
Department of Biotechnology, Delft University of Technology, Julianalaan 67, 2628 BC Delft, The Netherlands.
Department of Biotechnology, Delft University of Technology, Julianalaan 67, 2628 BC Delft, The Netherlands
FEMS Yeast Res. 2015 Mar;15(2). doi: 10.1093/femsyr/fov004. Epub 2015 Mar 4.
A variety of techniques for strain engineering in Saccharomyces cerevisiae have recently been developed. However, especially when multiple genetic manipulations are required, strain construction is still a time-consuming process. This study describes new CRISPR/Cas9-based approaches for easy, fast strain construction in yeast and explores their potential for simultaneous introduction of multiple genetic modifications. An open-source tool (http://yeastriction.tnw.tudelft.nl) is presented for identification of suitable Cas9 target sites in S. cerevisiae strains. A transformation strategy, using in vivo assembly of a guideRNA plasmid and subsequent genetic modification, was successfully implemented with high accuracies. An alternative strategy, using in vitro assembled plasmids containing two gRNAs, was used to simultaneously introduce up to six genetic modifications in a single transformation step with high efficiencies. Where previous studies mainly focused on the use of CRISPR/Cas9 for gene inactivation, we demonstrate the versatility of CRISPR/Cas9-based engineering of yeast by achieving simultaneous integration of a multigene construct combined with gene deletion and the simultaneous introduction of two single-nucleotide mutations at different loci. Sets of standardized plasmids, as well as the web-based Yeastriction target-sequence identifier and primer-design tool, are made available to the yeast research community to facilitate fast, standardized and efficient application of the CRISPR/Cas9 system.
最近已开发出多种用于酿酒酵母菌株工程的技术。然而,特别是当需要进行多种基因操作时,菌株构建仍然是一个耗时的过程。本研究描述了基于CRISPR/Cas9的新方法,用于在酵母中轻松、快速地构建菌株,并探索了它们同时引入多种基因修饰的潜力。提供了一个开源工具(http://yeastriction.tnw.tudelft.nl),用于鉴定酿酒酵母菌株中合适的Cas9靶位点。一种使用引导RNA质粒的体内组装和随后的基因修饰的转化策略以高精度成功实施。另一种策略,使用包含两个gRNA的体外组装质粒,用于在单个转化步骤中高效地同时引入多达六种基因修饰。以往的研究主要集中在使用CRISPR/Cas9进行基因失活,而我们通过实现多基因构建体的同时整合、基因缺失以及在不同位点同时引入两个单核苷酸突变,证明了基于CRISPR/Cas9的酵母工程的多功能性。为酵母研究群体提供了标准化质粒集以及基于网络的Yeastriction靶序列标识符和引物设计工具,以促进CRISPR/Cas9系统的快速、标准化和高效应用。