Noble Research Institute, LLC, 2510 Sam Noble Parkway, Ardmore, OK, 73401, USA.
Genome Editing Naturegenic Inc, 1281 Win Hentschel Boulevard, Kurz Purdue Technology Center Suite E-1251, West Lafayette, IN, 47906, USA.
Planta. 2020 Jul 8;252(2):15. doi: 10.1007/s00425-020-03415-0.
An improved CRISPR/Cas9 system with the Arabidopsis UBQ10 promoter-driven Cas9 exhibits consistently high mutation efficiency in Arabidopsis and M. truncatula. CRISPR/Cas9 is a powerful genome editing technology that has been applied in several crop species for trait improvement due to its simplicity, versatility, and specificity. However, the mutation efficiency of CRISPR/Cas9 in Arabidopsis and M. truncatula (Mt) is still challenging and inconsistent. To analyze the functionality of the CRISPR/Cas9 system in two model dicot species, four different promoter-driven Cas9 systems to target phytoene desaturase (PDS) genes were designed. Agrobacterium-mediated transformation was used for the delivery of constructed vectors to host plants. Phenotypic and genotypic analyses revealed that the Arabidopsis UBQ10 promoter-driven Cas9 significantly improves the mutation efficiency to 95% in Arabidopsis and 70% in M. truncatula. Moreover, the UBQ10-Cas9 system yielded 11% homozygous mutants in the T1 generation in Arabidopsis. Sequencing analyses of mutation events indicated that single-nucleotide insertions are the most frequent events in Arabidopsis, whereas multi-nucleotide deletions are dominant in bi-allelic and mono-allelic homozygous mutants in M. truncatula. Taken together, the UBQ10 promoter facilitates the best improvement in the CRISPR/Cas9 efficiency in PDS gene editing, followed by the EC1.2 promoter. Consistently, the improved UBQ10-Cas9 vector highly enhanced the mutation efficiency by four-fold over the commonly used 35S promoter in both dicot species.
一个改良的 CRISPR/Cas9 系统,带有拟南芥 UBQ10 启动子驱动的 Cas9,在拟南芥和 M. truncatula 中表现出一致的高突变效率。CRISPR/Cas9 是一种强大的基因组编辑技术,由于其简单性、多功能性和特异性,已在几种作物物种中应用于性状改良。然而,CRISPR/Cas9 在拟南芥和 M. truncatula(Mt)中的突变效率仍然具有挑战性且不一致。为了分析 CRISPR/Cas9 系统在两种模式双子叶植物中的功能,设计了四个不同的启动子驱动 Cas9 系统来靶向八氢番茄红素合成酶(PDS)基因。利用农杆菌介导的转化将构建的载体递送到宿主植物中。表型和基因型分析表明,拟南芥 UBQ10 启动子驱动的 Cas9 显著提高了在拟南芥中的突变效率达到 95%,在 M. truncatula 中的突变效率达到 70%。此外,UBQ10-Cas9 系统在拟南芥的 T1 代中产生了 11%的纯合突变体。突变事件的测序分析表明,在拟南芥中,单核苷酸插入是最常见的事件,而在 M. truncatula 的双等位基因和单等位基因纯合突变体中,多核苷酸缺失占主导地位。总之,UBQ10 启动子促进了 PDS 基因编辑中 CRISPR/Cas9 效率的最佳改进,其次是 EC1.2 启动子。一致地,改良的 UBQ10-Cas9 载体在两种双子叶植物中比常用的 35S 启动子使突变效率提高了四倍。