Ryan Owen W, Skerker Jeffrey M, Maurer Matthew J, Li Xin, Tsai Jordan C, Poddar Snigdha, Lee Michael E, DeLoache Will, Dueber John E, Arkin Adam P, Cate Jamie H D
Energy Biosciences Institute, University of California, Berkeley, Berkeley, United States.
Elife. 2014 Aug 19;3:e03703. doi: 10.7554/eLife.03703.
The directed evolution of biomolecules to improve or change their activity is central to many engineering and synthetic biology efforts. However, selecting improved variants from gene libraries in living cells requires plasmid expression systems that suffer from variable copy number effects, or the use of complex marker-dependent chromosomal integration strategies. We developed quantitative gene assembly and DNA library insertion into the Saccharomyces cerevisiae genome by optimizing an efficient single-step and marker-free genome editing system using CRISPR-Cas9. With this Multiplex CRISPR (CRISPRm) system, we selected an improved cellobiose utilization pathway in diploid yeast in a single round of mutagenesis and selection, which increased cellobiose fermentation rates by over 10-fold. Mutations recovered in the best cellodextrin transporters reveal synergy between substrate binding and transporter dynamics, and demonstrate the power of CRISPRm to accelerate selection experiments and discoveries of the molecular determinants that enhance biomolecule function.
生物分子的定向进化以改善或改变其活性是许多工程和合成生物学研究的核心。然而,从活细胞中的基因文库中筛选出改良变体需要质粒表达系统,该系统存在可变拷贝数效应,或者需要使用复杂的依赖标记的染色体整合策略。我们通过优化使用CRISPR-Cas9的高效单步无标记基因组编辑系统,开发了定量基因组装和将DNA文库插入酿酒酵母基因组的方法。利用这种多重CRISPR(CRISPRm)系统,我们在一轮诱变和筛选中,在二倍体酵母中选择了一条改良的纤维二糖利用途径,使纤维二糖发酵速率提高了10倍以上。在最佳纤维糊精转运蛋白中发现的突变揭示了底物结合与转运蛋白动力学之间的协同作用,并证明了CRISPRm在加速选择实验以及发现增强生物分子功能的分子决定因素方面的能力。