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优化的 sgRNA/Cas9 配对克隆和表达盒在猕猴桃中触发高效的多重基因组编辑。

Optimized paired-sgRNA/Cas9 cloning and expression cassette triggers high-efficiency multiplex genome editing in kiwifruit.

机构信息

Key Laboratory of Plant Resources Conservation and Sustainable Utilization, South China Botanical Garden, The Chinese Academy of Sciences, Guangzhou, Guangdong, China.

Guangdong Provincial Key Laboratory of Applied Botany, Guangzhou, Guangdong, China.

出版信息

Plant Biotechnol J. 2018 Aug;16(8):1424-1433. doi: 10.1111/pbi.12884. Epub 2018 Feb 6.

Abstract

Kiwifruit is an important fruit crop; however, technologies for its functional genomic and molecular improvement are limited. The clustered regulatory interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein (Cas) system has been successfully applied to genetic improvement in many crops, but its editing capability is variable depending on the different combinations of the synthetic guide RNA (sgRNA) and Cas9 protein expression devices. Optimizing conditions for its use within a particular species is therefore needed to achieve highly efficient genome editing. In this study, we developed a new cloning strategy for generating paired-sgRNA/Cas9 vectors containing four sgRNAs targeting the kiwifruit phytoene desaturase gene (AcPDS). Comparing to the previous method of paired-sgRNA cloning, our strategy only requires the synthesis of two gRNA-containing primers which largely reduces the cost. We further compared efficiencies of paired-sgRNA/Cas9 vectors containing different sgRNA expression devices, including both the polycistronic tRNA-sgRNA cassette (PTG) and the traditional CRISPR expression cassette. We found the mutagenesis frequency of the PTG/Cas9 system was 10-fold higher than that of the CRISPR/Cas9 system, coinciding with the relative expressions of sgRNAs in two different expression cassettes. In particular, we identified large chromosomal fragment deletions induced by the paired-sgRNAs of the PTG/Cas9 system. Finally, as expected, we found both systems can successfully induce the albino phenotype of kiwifruit plantlets regenerated from the G418-resistance callus lines. We conclude that the PTG/Cas9 system is a more powerful system than the traditional CRISPR/Cas9 system for kiwifruit genome editing, which provides valuable clues for optimizing CRISPR/Cas9 editing system in other plants.

摘要

猕猴桃是一种重要的水果作物;然而,其功能基因组和分子改良的技术有限。成簇的规律间隔短回文重复序列(CRISPR)/CRISPR 相关蛋白(Cas)系统已成功应用于许多作物的遗传改良,但它的编辑能力因合成向导 RNA(sgRNA)和 Cas9 蛋白表达装置的不同组合而有所不同。因此,需要优化其在特定物种中的使用条件,以实现高效的基因组编辑。在本研究中,我们开发了一种新的克隆策略,用于生成含有针对猕猴桃八氢番茄红素脱氢酶基因(AcPDS)的四个 sgRNA 的成对 sgRNA/Cas9 载体。与之前的成对 sgRNA 克隆方法相比,我们的策略仅需要合成两条含有 gRNA 的引物,这大大降低了成本。我们进一步比较了含有不同 sgRNA 表达装置的成对 sgRNA/Cas9 载体的效率,包括多顺反子 tRNA-sgRNA 盒(PTG)和传统的 CRISPR 表达盒。我们发现 PTG/Cas9 系统的突变频率比 CRISPR/Cas9 系统高 10 倍,这与两个不同表达盒中 sgRNA 的相对表达一致。特别是,我们鉴定了由 PTG/Cas9 系统的成对 sgRNA 诱导的大染色体片段缺失。最后,正如预期的那样,我们发现这两种系统都可以成功诱导 G418 抗性愈伤组织系再生的猕猴桃植物的白化表型。我们得出结论,PTG/Cas9 系统是一种比传统 CRISPR/Cas9 系统更强大的猕猴桃基因组编辑系统,为优化其他植物的 CRISPR/Cas9 编辑系统提供了有价值的线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f727/11388634/0348395bf4b3/PBI-16-1424-g004.jpg

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