利用生物学、多重CRISPR/Cas9编辑和Indel-Selective PCR对玉米自交系进行高效诱变和基因分型

IF 4.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Maruti Nandan Rai, Brian Rhodes, Stephen Jinga, Praveena Kanchupati, Edward Ross, Shawn R Carlson, Stephen P Moose
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引用次数: 0

摘要

基于CRISPR/Cas9的基因组编辑提高了我们对无数重要生物现象的理解。玉米多重基因组编辑面临的重要挑战包括组装大型复杂DNA结构,具有高效转化系统的基因型较少,以及昂贵/劳动密集型的基因分型方法。在这里,我们提出了一种多重CRISPR/Cas9基因组编辑系统的方法,该系统通过生物学向I型胚性愈伤组织提供单一紧凑的DNA结构,然后通过一种新的高效基因分型分析来确定所需的编辑结果。我们首先展示了在同一基因的多个目标位点上产生可遗传突变。接下来,我们成功地为一个基因家族的多个成员创建了单个和堆叠的突变。基因组测序发现脱靶突变是罕见的。对高度可转化的自交系H99和Illinois Low Protein1 (ILP1)都实现了多重基因组编辑,ILP1是一种基因型,以前没有报道过转化。除了通过PCR筛选缺失等位基因的转化事件外,我们还设计了PCR检测,选择性地扩增单个核苷酸的缺失或插入,这是通过非同源末端连接修复CRISPR/Cas9断裂的最常见结果。Indel-Selective PCR (IS-PCR)方法能够在后代群体中快速跟踪多个编辑过的等位基因。本文提出的用于多重CRISPR/Cas9诱变的“端到端”管道可用于在更广泛的遗传背景下加速玉米功能基因组学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient mutagenesis and genotyping of maize inbreds using biolistics, multiplex CRISPR/Cas9 editing, and Indel-Selective PCR.

CRISPR/Cas9 based genome editing has advanced our understanding of a myriad of important biological phenomena. Important challenges to multiplex genome editing in maize include assembly of large complex DNA constructs, few genotypes with efficient transformation systems, and costly/labor-intensive genotyping methods. Here we present an approach for multiplex CRISPR/Cas9 genome editing system that delivers a single compact DNA construct via biolistics to Type I embryogenic calli, followed by a novel efficient genotyping assay to identify desirable editing outcomes. We first demonstrate the creation of heritable mutations at multiple target sites within the same gene. Next, we successfully created individual and stacked mutations for multiple members of a gene family. Genome sequencing found off-target mutations are rare. Multiplex genome editing was achieved for both the highly transformable inbred line H99 and Illinois Low Protein1 (ILP1), a genotype where transformation has not previously been reported. In addition to screening transformation events for deletion alleles by PCR, we also designed PCR assays that selectively amplify deletion or insertion of a single nucleotide, the most common outcome from DNA repair of CRISPR/Cas9 breaks by non-homologous end-joining. The Indel-Selective PCR (IS-PCR) method enabled rapid tracking of multiple edited alleles in progeny populations. The 'end to end' pipeline presented here for multiplexed CRISPR/Cas9 mutagenesis can be applied to accelerate maize functional genomics in a broader diversity of genetic backgrounds.

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来源期刊
Plant Methods
Plant Methods 生物-植物科学
CiteScore
9.20
自引率
3.90%
发文量
121
审稿时长
2 months
期刊介绍: Plant Methods is an open access, peer-reviewed, online journal for the plant research community that encompasses all aspects of technological innovation in the plant sciences. There is no doubt that we have entered an exciting new era in plant biology. The completion of the Arabidopsis genome sequence, and the rapid progress being made in other plant genomics projects are providing unparalleled opportunities for progress in all areas of plant science. Nevertheless, enormous challenges lie ahead if we are to understand the function of every gene in the genome, and how the individual parts work together to make the whole organism. Achieving these goals will require an unprecedented collaborative effort, combining high-throughput, system-wide technologies with more focused approaches that integrate traditional disciplines such as cell biology, biochemistry and molecular genetics. Technological innovation is probably the most important catalyst for progress in any scientific discipline. Plant Methods’ goal is to stimulate the development and adoption of new and improved techniques and research tools and, where appropriate, to promote consistency of methodologies for better integration of data from different laboratories.
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