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用于抗虫害的基因组编辑:一种新兴的作物改良工具

Genome Editing for Resistance to Insect Pests: An Emerging Tool for Crop Improvement.

作者信息

Tyagi Shaily, Kesiraju Karthik, Saakre Manjesh, Rathinam Maniraj, Raman Venkat, Pattanayak Debasis, Sreevathsa Rohini

机构信息

ICAR-National Institute for Plant Biotechnology, LBS Building, Pusa Campus, New Delhi 110012, India.

出版信息

ACS Omega. 2020 Aug 11;5(33):20674-20683. doi: 10.1021/acsomega.0c01435. eCollection 2020 Aug 25.

DOI:10.1021/acsomega.0c01435
PMID:32875201
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7450494/
Abstract

Plants are challenged incessantly by several biotic and abiotic stresses during their entire growth period. As with other biotic stress factors, insect pests have also posed serious concerns related to yield losses due to which agricultural productivity is at stake. In plants, trait modification for crop improvement was initiated with breeding approaches followed by genetic engineering. However, stringent regulatory policies for risk assessment and lack of social acceptance for genetically modified crops worldwide have incited researchers toward alternate strategies. Genome engineering or genome editing has emerged as a new breeding technique with the ability to edit the genomes of plants, animals, microbes, and human beings. Several gene editing strategies are being executed with continuous emergence of variants. The scientific community has unraveled the utility of various editing tools from endonucleases to CRISPR/Cas in several aspects related to plant growth, development, and mitigation of stresses. The categorical focus on the development of tools and techniques including designing of binary vectors to facilitate ease in genome engineering are being pursued. Through this Review, we embark upon the conglomeration of various genome editing strategies that can be and are being used to design insect pest resistance in plants. Case studies and novel crop-based approaches that reiterate the successful use of these tools in insects as well as in plants are highlighted. Further, the Review also provides implications for the requirement of a specific regulatory framework and risk assessment of the edited crops. Genome editing toward insect pest management is here to stay, provided uncompromising efforts are made toward the identification of amiable target genes.

摘要

植物在其整个生长周期中不断受到多种生物和非生物胁迫的挑战。与其他生物胁迫因素一样,害虫也引发了人们对产量损失的严重担忧,农业生产力因此受到威胁。在植物中,作物改良的性状修饰最初采用育种方法,随后是基因工程。然而,全球范围内对转基因作物风险评估的严格监管政策以及社会对转基因作物的接受度不足,促使研究人员寻求替代策略。基因组工程或基因组编辑已成为一种新的育种技术,能够编辑植物、动物、微生物和人类的基因组。随着变体的不断出现,多种基因编辑策略正在实施。科学界已经在与植物生长、发育和胁迫缓解相关的几个方面揭示了从核酸内切酶到CRISPR/Cas等各种编辑工具的效用。目前正在致力于开发包括设计二元载体在内的工具和技术,以促进基因组工程的便利性。通过本综述,我们着手探讨各种可用于设计植物抗虫性的基因组编辑策略。重点介绍了重申这些工具在昆虫和植物中成功应用的案例研究和基于新作物的方法。此外,本综述还对编辑作物的特定监管框架要求和风险评估提出了建议。只要我们不遗余力地努力识别合适的靶基因,基因组编辑在害虫管理方面将持续发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4e7/7450494/f6991d4eac18/ao0c01435_0009.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4e7/7450494/3a0bc2b517d6/ao0c01435_0008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4e7/7450494/f6991d4eac18/ao0c01435_0009.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4e7/7450494/3a0bc2b517d6/ao0c01435_0008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4e7/7450494/f6991d4eac18/ao0c01435_0009.jpg

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