农杆菌和单一Cas9-sgRNA转录系统介导的多年生黑麦草高效基因编辑

IF 4.9 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Frontiers in genome editing Pub Date : 2022-09-06 eCollection Date: 2022-01-01 DOI:10.3389/fgeed.2022.960414
Rahul Kumar, Troy Kamuda, Roshani Budhathoki, Dan Tang, Huseyin Yer, Yunde Zhao, Yi Li
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引用次数: 6

摘要

基因组编辑技术为多年生黑麦草(一种重要的饲草和草坪草)的遗传改良提供了有力的工具。唯一一篇关于多年生黑麦草基因编辑的出版物使用基因枪进行植物转化,使用基于双启动子的CRISPR/Cas9系统进行编辑。然而,它们的编辑效率很低(5.9%或只产生一株基因编辑植物)。为了验证玉米泛素1 (ZmUbi1)启动子在多年生黑麦草基因编辑中的适用性,我们制备了ZmUbi1启动子:RUBY转基因植株。我们观察到ZmUbi1启动子在茎再生前愈伤组织中活跃,表明该启动子适合于多年生黑麦草中Cas9和sgRNA的表达,以实现双等位基因突变植株的高效生产。然后,我们使用ZmUbi1启动子控制多年生黑麦草中Cas9和sgRNA的表达。Cas9和sgRNA序列之间的核酶切割靶点允许转录后产生功能性Cas9 mRNA和sgRNA。利用农杆菌进行遗传转化,我们观察到多年生黑麦草中PHYTOENE DESATURASE基因的编辑效率为29%。DNA测序分析显示,大多数pds植物含有双等位基因突变。这些结果表明,由ZmUbi1启动子控制的单个Cas9和sgRNA转录单元的表达为多年生黑麦草双等位基因突变体的产生提供了一个高效的系统,也应适用于其他相关禾本科物种。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

<i>Agrobacterium</i>- and a single Cas9-sgRNA transcript system-mediated high efficiency gene editing in perennial ryegrass.

<i>Agrobacterium</i>- and a single Cas9-sgRNA transcript system-mediated high efficiency gene editing in perennial ryegrass.

<i>Agrobacterium</i>- and a single Cas9-sgRNA transcript system-mediated high efficiency gene editing in perennial ryegrass.

Agrobacterium- and a single Cas9-sgRNA transcript system-mediated high efficiency gene editing in perennial ryegrass.

Genome editing technologies provide a powerful tool for genetic improvement of perennial ryegrass, an important forage and turfgrass species worldwide. The sole publication for gene editing in perennial ryegrass used gene-gun for plant transformation and a dual promoter based CRISPR/Cas9 system for editing. However, their editing efficiency was low (5.9% or only one gene-edited plant produced). To test the suitability of the maize Ubiquitin 1 (ZmUbi1) promoter in gene editing of perennial ryegrass, we produced ZmUbi1 promoter:RUBY transgenic plants. We observed that ZmUbi1 promoter was active in callus tissue prior to shoot regeneration, suggesting that the promoter is suitable for Cas9 and sgRNA expression in perennial ryegrass for high-efficiency production of bi-allelic mutant plants. We then used the ZmUbi1 promoter for controlling Cas9 and sgRNA expression in perennial ryegrass. A ribozyme cleavage target site between the Cas9 and sgRNA sequences allowed production of functional Cas9 mRNA and sgRNA after transcription. Using Agrobacterium for genetic transformation, we observed a 29% efficiency for editing the PHYTOENE DESATURASE gene in perennial ryegrass. DNA sequencing analyses revealed that most pds plants contained bi-allelic mutations. These results demonstrate that the expression of a single Cas9 and sgRNA transcript unit controlled by the ZmUbi1 promoter provides a highly efficient system for production of bi-allelic mutants of perennial ryegrass and should also be applicable in other related grass species.

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