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通过精准基因组编辑实现作物育种的进展

Advances in Crop Breeding Through Precision Genome Editing.

作者信息

Nerkar Gauri, Devarumath Suman, Purankar Madhavi, Kumar Atul, Valarmathi R, Devarumath Rachayya, Appunu C

机构信息

Molecular Biology and Genetic Engineering Laboratory, Vasantdada Sugar Institute, Pune, India.

Vidya Pratishthan's College of Agricultural Biotechnology, Baramati, India.

出版信息

Front Genet. 2022 Jul 14;13:880195. doi: 10.3389/fgene.2022.880195. eCollection 2022.

Abstract

The global climate change and unfavourable abiotic and biotic factors are limiting agricultural productivity and therefore intensifying the challenges for crop scientists to meet the rising demand for global food supply. The introduction of applied genetics to agriculture through plant breeding facilitated the development of hybrid varieties with improved crop productivity. However, the development of new varieties with the existing gene pools poses a challenge for crop breeders. Genetic engineering holds the potential to broaden genetic diversity by the introduction of new genes into crops. But the random insertion of foreign DNA into the plant's nuclear genome often leads to transgene silencing. Recent advances in the field of plant breeding include the development of a new breeding technique called genome editing. Genome editing technologies have emerged as powerful tools to precisely modify the crop genomes at specific sites in the genome, which has been the longstanding goal of plant breeders. The precise modification of the target genome, the absence of foreign DNA in the genome-edited plants, and the faster and cheaper method of genome modification are the remarkable features of the genome-editing technology that have resulted in its widespread application in crop breeding in less than a decade. This review focuses on the advances in crop breeding through precision genome editing. This review includes: an overview of the different breeding approaches for crop improvement; genome editing tools and their mechanism of action and application of the most widely used genome editing technology, CRISPR/Cas9, for crop improvement especially for agronomic traits such as disease resistance, abiotic stress tolerance, herbicide tolerance, yield and quality improvement, reduction of anti-nutrients, and improved shelf life; and an update on the regulatory approval of the genome-edited crops. This review also throws a light on development of high-yielding climate-resilient crops through precision genome editing.

摘要

全球气候变化以及不利的非生物和生物因素限制了农业生产力,因此加剧了作物科学家满足全球粮食供应不断增长需求的挑战。通过植物育种将应用遗传学引入农业,促进了具有更高作物生产力的杂交品种的开发。然而,利用现有基因库培育新品种对作物育种者来说是一项挑战。基因工程有潜力通过向作物中引入新基因来拓宽遗传多样性。但是,将外源DNA随机插入植物核基因组往往会导致转基因沉默。植物育种领域的最新进展包括一种名为基因组编辑的新育种技术的发展。基因组编辑技术已成为在基因组特定位点精确修饰作物基因组的强大工具,这一直是植物育种者的长期目标。基因组编辑技术的显著特点是能够精确修饰目标基因组、基因组编辑植物中不存在外源DNA,以及基因组修饰方法更快、更便宜,这些特点使其在不到十年的时间里在作物育种中得到广泛应用。本综述重点关注通过精确基因组编辑在作物育种方面的进展。本综述包括:作物改良不同育种方法的概述;基因组编辑工具及其作用机制,以及最广泛使用的基因组编辑技术CRISPR/Cas9在作物改良中的应用,特别是在抗病性、非生物胁迫耐受性、除草剂耐受性、产量和品质改良、抗营养物质减少以及延长货架期等农艺性状方面的应用;以及基因组编辑作物的监管批准情况的更新。本综述还阐述了通过精确基因组编辑培育高产抗逆作物的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6914/9329802/2572a8d4e6fa/fgene-13-880195-g001.jpg

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