Moosburner Mark Andrew, Gholami Pardis, McCarthy James K, Tan Maxine, Bielinski Vincent A, Allen Andrew E
Integrative Oceanography Division, Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA, United States.
J. Craig Venter Institute, La Jolla, CA, United States.
Front Microbiol. 2020 Jan 28;11:5. doi: 10.3389/fmicb.2020.00005. eCollection 2020.
Marine diatoms are eukaryotic microalgae that play significant ecological and biogeochemical roles in oceans. They also have significant potential as organismal platforms for exploitation to address biotechnological and industrial goals. In order to address both modes of research, sophisticated molecular and genetic tools are required. We presented here new and improved methodologies for introducing CRISPR-Cas9 to the model diatom cells and a streamlined protocol for genotyping mutant cell lines with previously unknown phenotypes. First, bacterial-conjugation was optimized for the delivery of Cas9 by transcriptionally fusing Cas9 to a selectable marker by the 2A peptide. An episome cloning strategy using both negative and positive selection was developed to streamline CRISPR-episome assembly. Next, cell line picking and genotyping strategies, that utilize manual sequencing curation, TIDE sequencing analysis, and a T7 endonuclease assay, were developed to shorten the time required to generate mutants. Following this new experimental pipeline, both single-gene and two-gene knockout cell lines were generated at mutagenesis efficiencies of 48% and 25%, respectively. Lastly, a protocol for precise gene insertions via CRISPR-Cas9 targeting was developed using particle-bombardment transformation methods. Overall, the novel Cas9 episome design and improved genotyping methods presented here allow for quick and easy genotyping and isolation of mutant cell lines (less than 3 weeks) without relying on a known phenotype to screen for mutants.
海洋硅藻是真核微藻,在海洋中发挥着重要的生态和生物地球化学作用。它们作为用于实现生物技术和工业目标的生物平台也具有巨大潜力。为了兼顾这两种研究模式,需要精密的分子和遗传工具。我们在此展示了将CRISPR-Cas9导入模式硅藻细胞的全新改良方法,以及用于对具有未知表型的突变细胞系进行基因分型的简化方案。首先,通过2A肽将Cas9转录融合到一个选择标记上,从而优化细菌接合以递送Cas9。开发了一种同时使用阴性和阳性选择的附加体克隆策略,以简化CRISPR-附加体组装。接下来,开发了利用手动测序校正、TIDE测序分析和T7核酸内切酶测定的细胞系挑选和基因分型策略,以缩短生成突变体所需的时间。按照这条新的实验流程,分别以48%和25%的诱变效率生成了单基因和双基因敲除细胞系。最后,利用粒子轰击转化方法开发了一种通过CRISPR-Cas9靶向进行精确基因插入的方案。总体而言,本文介绍的新型Cas9附加体设计和改良的基因分型方法能够快速简便地对突变细胞系进行基因分型和分离(不到3周),而无需依赖已知表型来筛选突变体。