The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Denmark.
The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Denmark.
Metab Eng. 2018 Jul;48:288-296. doi: 10.1016/j.ymben.2018.07.001. Epub 2018 Jul 5.
Here we describe a method for robust directed evolution using mutagenesis of large sequence spaces in their genomic contexts. The method employs error-prone PCR and Cas9-mediated genome integration of mutant libraries of large-sized donor variants into single or multiple genomic sites with efficiencies reaching 98-99%. From sequencing of genome integrants, we determined that the mutation frequency along the donor fragments is maintained evenly and successfully integrated into the genomic target loci, indicating that there is no bias of mutational load towards the proximity of the double strand break. To validate the applicability of the method for directed evolution of metabolic gene products we engineered two essential enzymes in the mevalonate pathway of Saccharomyces cerevisiae with selected variants supporting up to 11-fold higher production of isoprenoids. Taken together, our method extends on existing CRISPR technologies by facilitating efficient mutagenesis of hundreds of nucleotides in cognate genomic contexts.
在这里,我们描述了一种使用易错 PCR 和 Cas9 介导的基因组整合在其基因组背景下对大序列空间进行稳健定向进化的方法。该方法的效率达到 98-99%,可将大型供体变体的突变文库通过易错 PCR 错误引入到单个或多个基因组位点中。通过对基因组整合子的测序,我们确定供体片段上的突变频率保持均匀,并成功整合到靶基因组位点,这表明不存在突变负荷向双链断裂附近聚集的偏向性。为了验证该方法在代谢基因产物定向进化中的适用性,我们对酿酒酵母甲羟戊酸途径中的两个必需酶进行了工程改造,选择的变体支持异戊二烯的产量提高了 11 倍。总之,我们的方法通过在同源基因组背景下有效地诱变数百个核苷酸,扩展了现有的 CRISPR 技术。