利用CRISPR/LbCas12a系统对葡萄基因组进行高效编辑。

IF 10.6 Q1 HORTICULTURE Molecular Horticulture Pub Date : 2023-10-18 DOI:10.1186/s43897-023-00069-w
Chong Ren, Elias Kirabi Gathunga, Xue Li, Huayang Li, Junhua Kong, Zhanwu Dai, Zhenchang Liang
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引用次数: 1

摘要

簇状规则间隔短回文重复序列(CRISPR)/Cas12a系统,也称为CRISPR/Cpf1,已成功用于许多植物的基因组工程,但尚未用于葡萄。在这里,我们开发并证明了来自Lachnospiraceae细菌ND2006(LbCas12a)的CRISPR/Cas12a通过靶向41B细胞中的液泡可塑性单糖转运蛋白1(TMT1)和二氢黄酮醇-4-还原酶1(DFR1)基因来诱导靶向突变的功效。DFR1基因的敲除改变了DFR1突变细胞中类黄酮的积累。热处理(34℃)提高了CRISPR/LbCas12a系统的编辑效率,热处理后TMT1-crRNA 1和TMT1-cr RNA 2的编辑效率分别从35.3%提高到44.6%和29.9%提高到37.3%。此外,发现crRNA序列是影响编辑效率的主要因素,而与设计用于多重基因组编辑的crRNA阵列中的位置无关。此外,用截短的crRNA(trucrRNA)进行基因组编辑表明,在产生靶向突变方面,具有20个nt引导序列的trucrRNA与具有24个nt引导的原始crRNA一样有效,而具有较短靶互补区的trucrRNAs ≤ 18nt的长度可能不会在41B细胞中诱导可检测的突变。所有这些结果为CRISPR/LbCas12a系统作为基因组工程的有力工具在葡萄中的进一步应用提供了证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Efficient genome editing in grapevine using CRISPR/LbCas12a system.

Clustered regularly interspaced short palindromic repeats (CRISPR) /Cas12a system, also known as CRISPR/Cpf1, has been successfully harnessed for genome engineering in many plants, but not in grapevine yet. Here we developed and demonstrated the efficacy of CRISPR/Cas12a from Lachnospiraceae bacterium ND2006 (LbCas12a) in inducing targeted mutagenesis by targeting the tonoplastic monosaccharide transporter1 (TMT1) and dihydroflavonol-4-reductase 1 (DFR1) genes in 41B cells. Knockout of DFR1 gene altered flavonoid accumulation in dfr1 mutant cells. Heat treatment (34℃) improved the editing efficiencies of CRISPR/LbCas12a system, and the editing efficiencies of TMT1-crRNA1 and TMT1-crRNA2 increased from 35.3% to 44.6% and 29.9% to 37.3% after heat treatment, respectively. Moreover, the sequences of crRNAs were found to be predominant factor affecting editing efficiencies irrespective of the positions within the crRNA array designed for multiplex genome editing. In addition, genome editing with truncated crRNAs (trucrRNAs) showed that trucrRNAs with 20 nt guide sequences were as effective as original crRNAs with 24 nt guides in generating targeted mutagenesis, whereas trucrRNAs with shorter regions of target complementarity ≤ 18 nt in length may not induce detectable mutations in 41B cells. All these results provide evidence for further applications of CRISPR/LbCas12a system in grapevine as a powerful tool for genome engineering.

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来源期刊
Molecular Horticulture
Molecular Horticulture horticultural research-
CiteScore
8.00
自引率
0.00%
发文量
24
审稿时长
12 weeks
期刊介绍: Aims Molecular Horticulture aims to publish research and review articles that significantly advance our knowledge in understanding how the horticultural crops or their parts operate mechanistically. Articles should have profound impacts not only in terms of high citation number or the like, but more importantly on the direction of the horticultural research field. Scope Molecular Horticulture publishes original Research Articles, Letters, and Reviews on novel discoveries on the following, but not limited to, aspects of horticultural plants (including medicinal plants): ▪ Developmental and evolutionary biology ▪ Physiology, biochemistry and cell biology ▪ Plant-microbe and plant-environment interactions ▪ Genetics and epigenetics ▪ Molecular breeding and biotechnology ▪ Secondary metabolism and synthetic biology ▪ Multi-omics dealing with data sets of genome, transcriptome, proteome, metabolome, epigenome and/or microbiome. The journal also welcomes research articles using model plants that reveal mechanisms and/or principles readily applicable to horticultural plants, translational research articles involving application of basic knowledge (including those of model plants) to the horticultural crops, novel Methods and Resources of broad interest. In addition, the journal publishes Editorial, News and View, and Commentary and Perspective on current, significant events and topics in global horticultural fields with international interests.
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