LISBP, Université de Toulouse, INSA, INRA, CNRS, Toulouse, France.
Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, 78350 Jouy-en-Josas, Paris, France.
J Mol Biol. 2018 Oct 19;430(21):4293-4306. doi: 10.1016/j.jmb.2018.08.024. Epub 2018 Sep 15.
Yarrowia lipolytica is an oleaginous yeast of growing industrial interest for biotechnological applications. In the last few years, genome edition has become an easier and more accessible prospect with the world wild spread development of CRISPR/Cas9 technology. In this study, we focused our attention on the production of the two key elements of the CRISPR-Cas9 ribonucleic acid protein complex in this non-conventional yeast. The efficiency of NHEJ-induced knockout was measured by time-course monitoring using multiple parameters flow cytometry, as well as phenotypic and genotypic observations, and linked to nuclease production levels showing that its strong overexpression is unnecessary. Thus, the limiting factor for the generation of a functional ribonucleic acid protein complex clearly resides in guide expression, which was probed by testing different linker lengths between the transfer RNA promoter and the sgRNA. The results highlight a clear deleterious effect of mismatching bases at the 5' end of the target sequence. For the first time in yeast, an investigation of its maturation from the primary transcript was undertaken by sequencing multiple sgRNAs extracted from the host. These data provide insights into of the yeast small RNA processing, from synthesis to maturation, and suggests a pathway for their degradation in Y. lipolytica. Subsequently, a whole-genome sequencing of a modified strain detected no abnormal modification due to off-target effects, confirming CRISPR/Cas9 as a safe strategy for editing Y. lipolytica genome. Finally, the optimized system was used to promote in vivo directed mutagenesis via homology-directed repair with a ssDNA oligonucleotide.
解脂耶氏酵母是一种具有增长工业兴趣的油脂酵母,可用于生物技术应用。在过去的几年中,随着 CRISPR/Cas9 技术在世界范围内的广泛发展,基因组编辑变得更加容易和普及。在这项研究中,我们专注于在这种非常规酵母中生产 CRISPR-Cas9 核糖核蛋白复合物的两个关键要素。通过使用多参数流式细胞术进行时程监测来测量非同源末端连接(NHEJ)诱导的敲除效率,以及表型和基因型观察,并将其与核酸酶产生水平相关联,表明其过表达是不必要的。因此,产生功能性核糖核蛋白复合物的限制因素显然在于向导表达,通过测试转移 RNA 启动子和 sgRNA 之间不同的连接子长度来探测其。结果突出显示了靶序列 5' 端错配碱基的明显有害影响。这是首次在酵母中,通过从宿主中提取的多个 sgRNA 进行测序,对其从初级转录物的成熟进行了研究。这些数据提供了对酵母小 RNA 加工的深入了解,从合成到成熟,并提出了它们在 Y. lipolytica 中降解的途径。随后,对修饰菌株进行全基因组测序未发现由于脱靶效应引起的异常修饰,这证实了 CRISPR/Cas9 是编辑 Y. lipolytica 基因组的安全策略。最后,优化的系统用于通过同源定向修复与 ssDNA 寡核苷酸在体内促进定向诱变。