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1
Plant breeding at the speed of light: the power of CRISPR/Cas to generate directed genetic diversity at multiple sites.光速植物育种:CRISPR/Cas 在多个位点产生定向遗传多样性的威力。
BMC Plant Biol. 2019 May 2;19(1):176. doi: 10.1186/s12870-019-1775-1.
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Efficient induction of heritable inversions in plant genomes using the CRISPR/Cas system.利用 CRISPR/Cas 系统高效诱导植物基因组中的可遗传倒位。
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CRISPR/Cas-mediated gene targeting in plants: finally a turn for the better for homologous recombination.CRISPR/Cas 介导的植物基因靶向:同源重组终于迎来了转机。
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Applications and potential of genome editing in crop improvement.基因组编辑在作物改良中的应用及潜力。
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DNA Break Repair in Plants and Its Application for Genome Engineering.植物中的DNA断裂修复及其在基因组工程中的应用
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The CRISPR/Cas revolution continues: From efficient gene editing for crop breeding to plant synthetic biology.CRISPR/Cas 技术革命仍在继续:从高效的作物基因编辑到植物合成生物学。
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Harnessing accurate non-homologous end joining for efficient precise deletion in CRISPR/Cas9-mediated genome editing.利用精确的非同源末端连接实现 CRISPR/Cas9 介导的基因组编辑中的高效精确缺失。
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Rapid improvement of domestication traits in an orphan crop by genome editing.通过基因组编辑快速改良孤儿作物的驯化性状。
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De novo domestication of wild tomato using genome editing.利用基因组编辑对野生番茄进行从头驯化。
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Domestication of wild tomato is accelerated by genome editing.基因组编辑加速了野生番茄的驯化。
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从基因编辑到基因组工程:通过CRISPR/Cas重组植物染色体

From gene editing to genome engineering: restructuring plant chromosomes via CRISPR/Cas.

作者信息

Schmidt Carla, Schindele Patrick, Puchta Holger

机构信息

Botanical Institute, Karlsruhe Institute of Technology, POB 6980, 76133 Karlsruhe, Germany.

出版信息

aBIOTECH. 2019 Aug 9;1(1):21-31. doi: 10.1007/s42994-019-00002-0. eCollection 2020 Jan.

DOI:10.1007/s42994-019-00002-0
PMID:36305002
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9584095/
Abstract

In the last years, tremendous progress has been achieved in the field of gene editing in plants. By the induction of single site-specific double-strand breaks (DSBs), the knockout of genes by non-homologous end joining has become routine in many plant species. Recently, the efficiency of inducing pre-planned mutations by homologous recombination has also been improved considerably. However, very little effort has been undertaken until now to achieve more complex changes in plant genomes by the simultaneous induction of several DSBs. Several reports have been published on the efficient induction of deletions. However, the induction of intrachromosomal inversions and interchromosomal recombination by the use of CRISPR/Cas has only recently been reported. In this review, we want to sum up these results and put them into context with regards to what is known about natural chromosome rearrangements in plants. Moreover, we review the recent progress in CRISPR/Cas-based mammalian chromosomal rearrangements, which might be inspiring for plant biologists. In the long run, the controlled restructuring of plant genomes should enable us to link or break linkage of traits at will, thus defining a new area of plant breeding.

摘要

近年来,植物基因编辑领域取得了巨大进展。通过诱导单一位点特异性双链断裂(DSB),利用非同源末端连接进行基因敲除在许多植物物种中已成为常规操作。最近,通过同源重组诱导预先设计的突变的效率也有了显著提高。然而,迄今为止,通过同时诱导多个DSB来实现植物基因组更复杂变化的努力还很少。已有多篇关于高效诱导缺失的报道。然而,利用CRISPR/Cas诱导染色体内倒位和染色体间重组的研究直到最近才被报道。在这篇综述中,我们想总结这些结果,并将其与植物自然染色体重排的已知情况相结合。此外,我们回顾了基于CRISPR/Cas的哺乳动物染色体重排的最新进展,这可能会给植物生物学家带来启发。从长远来看,对植物基因组的可控重组应该能够使我们随意连接或打破性状的连锁,从而定义植物育种的一个新领域。