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首页> 外文期刊>Plant Molecular Biology >Application of Cas12a and nCas9-activation-induced cytidine deaminase for genome editing and as a non-sexual strategy to generate homozygous/multiplex edited plants in the allotetraploid genome of tobacco
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Application of Cas12a and nCas9-activation-induced cytidine deaminase for genome editing and as a non-sexual strategy to generate homozygous/multiplex edited plants in the allotetraploid genome of tobacco

机译:CAS12A和NCAS9激活诱导的胞苷脱氨酶在基因组编辑中的应用及作为非性策略,以在烟草的同偶倍体基因组中产生纯合/多重编辑植物

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摘要

Key message Protoplasts can be used for genome editing using several different CRISPR systems, either separately or simultaneously, and that the resulting mutations can be recovered in regenerated non-chimaeric plants. Protoplast transfection and regeneration systems are useful platforms for CRISPR/Cas mutagenesis and genome editing. In this study, we demonstrate the use of Cpf1 (Cas12a) and nCas9-activation-induced cytidine deaminase (nCas9-Target-AID) systems to mutagenize Nicotiana tabacum protoplasts and to regenerate plants harboring the resulting mutations. We analyzed 20 progeny plants of Cas12a-mediated phytoene desaturase (PDS) mutagenized regenerants, as well as regenerants from wild-type protoplasts, and confirmed that their genotypes were inherited in a Mendelian manner. We used a Cas9 nickase (nCas9)-cytidine deaminase to conduct C to T editing of the Ethylene receptor 1 (ETR1) gene in tobacco protoplasts and obtained edited regenerates. It is difficult to obtain homozygous edits of polyploid genomes when the editing efficiency is low. A second round of mutagenesis of partially edited regenerants (a two-step transfection protocol) allowed us to derive ETR1 fully edited regenerants without the need for sexual reproduction. We applied three different Cas systems (SaCas9, Cas12a, and nCas9-Traget AID) using either a one-step or a two-step transfection platform to obtain triply mutated and/or edited tobacco regenerants. Our results indicate that these three Cas systems can function simultaneously within a single cell.
机译:关键消息原生质体可用于使用几种不同的CRISPR系统,单独或同时使用几种不同的CRISPR系统,并且可以在再生的非嵌合植物中回收所得突变。原生质体转染和再生系统是CRISPR / CAS诱变和基因组编辑的有用平台。在这项研究中,我们证明了使用CPF1(CAS12A)和NCAS9-活化诱导的胞苷脱胺酶(NCAS9-靶助剂)系统以诱变尼古利氏菌簇生原生质体并再生植物含有所得突变的植物。我们分析了来自Cas12A介导的植物去饱和酶(PDS)诱变的再生剂的20个后代植物,以及来自野生型原生质体的再生剂,并证实了它们的基因型以孟德尔方式遗传。我们使用了Cas9酸酐酶(NCAS9) - cytidine脱氨酶,以在烟草原生质体中对乙烯受体1(ETR1)基因的乙烯受体1(ETR1)基因进行编辑,并得到编辑的再生。当编辑效率低时,难以获得多倍体基因组的纯合编辑。部分编辑的再生剂的第二轮诱变(两步转染方案)允许我们衍生ETR1完全编辑的再生剂,而无需性繁殖。我们使用一步或两步转染平台应用三种不同的CAS系统(SACAS9,CAS12A和NCAS9-TRAGET AID),以获得三重突变和/或编辑烟草再生。我们的结果表明,这三种CAS系统可以在单个单元格内同时起作用。

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