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本文引用的文献

1
Genome-wide specificity of plant genome editing by both CRISPR-Cas9 and TALEN.CRISPR-Cas9 和 TALEN 介导的植物基因组编辑的全基因组特异性。
Sci Rep. 2022 Jun 4;12(1):9330. doi: 10.1038/s41598-022-13034-2.
2
Optimized Transformation and Gene Editing of the B104 Public Maize Inbred by Improved Tissue Culture and Use of Morphogenic Regulators.通过改进组织培养和使用形态发生调节剂对B104公共玉米自交系进行优化转化和基因编辑
Front Plant Sci. 2022 Apr 22;13:883847. doi: 10.3389/fpls.2022.883847. eCollection 2022.
3
Mini-Review: Transgenerational CRISPR/Cas9 Gene Editing in Plants.综述:植物中的跨代CRISPR/Cas9基因编辑
Front Genome Ed. 2022 Feb 4;4:825042. doi: 10.3389/fgeed.2022.825042. eCollection 2022.
4
Enhanced soluble sugar content in tomato fruit using CRISPR/Cas9-mediated and gene editing.利用CRISPR/Cas9介导的基因编辑提高番茄果实中的可溶性糖含量。
PeerJ. 2021 Nov 9;9:e12478. doi: 10.7717/peerj.12478. eCollection 2021.
5
SAMBA controls cell division rate during maize development.SAMBA 控制玉米发育过程中的细胞分裂速率。
Plant Physiol. 2022 Jan 20;188(1):411-424. doi: 10.1093/plphys/kiab514.
6
PLAZA 5.0: extending the scope and power of comparative and functional genomics in plants.PLAZA 5.0:拓展植物比较和功能基因组学的范围和力量。
Nucleic Acids Res. 2022 Jan 7;50(D1):D1468-D1474. doi: 10.1093/nar/gkab1024.
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Features and applications of haplotypes in crop breeding.单倍型在作物育种中的特点和应用。
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Genetics of Germination and Seedling Traits under Drought Stress in a MAGIC Population of Maize.玉米MAGIC群体干旱胁迫下萌发和幼苗性状的遗传分析
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BREEDIT:一种用于改良玉米复杂数量性状的多重基因组编辑策略。

BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize.

机构信息

Center for Plant Systems Biology, VIB, B-9052 Gent, Belgium.

Department of Plant Biotechnology and Bioinformatics, Ghent University, B-9052 Gent, Belgium.

出版信息

Plant Cell. 2023 Jan 2;35(1):218-238. doi: 10.1093/plcell/koac243.

DOI:10.1093/plcell/koac243
PMID:36066192
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9806654/
Abstract

Ensuring food security for an ever-growing global population while adapting to climate change is the main challenge for agriculture in the 21st century. Although new technologies are being applied to tackle this problem, we are approaching a plateau in crop improvement using conventional breeding. Recent advances in CRISPR/Cas9-mediated gene engineering have paved the way to accelerate plant breeding to meet this increasing demand. However, many traits are governed by multiple small-effect genes operating in complex interactive networks. Here, we present the gene discovery pipeline BREEDIT, which combines multiplex genome editing of whole gene families with crossing schemes to improve complex traits such as yield and drought tolerance. We induced gene knockouts in 48 growth-related genes into maize (Zea mays) using CRISPR/Cas9 and generated a collection of over 1,000 gene-edited plants. The edited populations displayed (on average) 5%-10% increases in leaf length and up to 20% increases in leaf width compared with the controls. For each gene family, edits in subsets of genes could be associated with enhanced traits, allowing us to reduce the gene space to be considered for trait improvement. BREEDIT could be rapidly applied to generate a diverse collection of mutants to identify promising gene modifications for later use in breeding programs.

摘要

在 21 世纪,确保不断增长的全球人口的粮食安全,同时适应气候变化,是农业面临的主要挑战。尽管新技术正被应用于解决这个问题,但我们在利用常规育种方法来提高作物方面已经接近瓶颈。最近,CRISPR/Cas9 介导的基因工程技术的进步为加速植物育种以满足这一不断增长的需求铺平了道路。然而,许多性状是由多个在复杂交互网络中起作用的小效应基因控制的。在这里,我们提出了基因发现管道 BREEDIT,它结合了全基因家族的多重基因组编辑和杂交方案,以改善产量和耐旱性等复杂性状。我们使用 CRISPR/Cas9 对 48 个与生长相关的基因进行了基因敲除,并生成了超过 1000 株基因编辑植物的集合。与对照相比,编辑后的群体的叶片长度平均增加了 5%-10%,叶片宽度增加了高达 20%。对于每个基因家族,基因编辑子集与增强的性状相关联,这使我们能够减少要考虑用于改良性状的基因空间。BREEDIT 可以快速应用于产生多样化的突变体集合,以鉴定有前途的基因修饰,以备将来用于育种计划。