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Advancing crop disease resistance through genome editing: a promising approach for enhancing agricultural production.

作者信息

Manzoor Subaya, Nabi Sajad Un, Rather Tariq Rasool, Gani Gousia, Mir Zahoor Ahmad, Wani Ab Waheed, Ali Sajad, Tyagi Anshika, Manzar Nazia

机构信息

Division of Plant Pathology, FOA-SKUAST-K, Wadura, Srinagar, India.

ICAR-Central Institute of Temperate Horticulture, Srinagar, India.

出版信息

Front Genome Ed. 2024 Jun 26;6:1399051. doi: 10.3389/fgeed.2024.1399051. eCollection 2024.


DOI:10.3389/fgeed.2024.1399051
PMID:38988891
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11234172/
Abstract

Modern agriculture has encountered several challenges in achieving constant yield stability especially due to disease outbreaks and lack of long-term disease-resistant crop cultivars. In the past, disease outbreaks in economically important crops had a major impact on food security and the economy. On the other hand climate-driven emergence of new pathovars or changes in their host specificity further poses a serious threat to sustainable agriculture. At present, chemical-based control strategies are frequently used to control microbial pathogens and pests, but they have detrimental impact on the environment and also resulted in the development of resistant phyto-pathogens. As a replacement, cultivating engineered disease-resistant crops can help to minimize the negative impact of regular pesticides on agriculture and the environment. Although traditional breeding and genetic engineering have been instrumental in crop disease improvement but they have certain limitations such as labour intensity, time consumption, and low efficiency. In this regard, genome editing has emerged as one of the potential tools for improving disease resistance in crops by targeting multiple traits with more accuracy and efficiency. For instance, genome editing techniques, such as CRISPR/Cas9, CRISPR/Cas13, base editing, TALENs, ZFNs, and meganucleases, have proved successful in improving disease resistance in crops through targeted mutagenesis, gene knockouts, knockdowns, modifications, and activation of target genes. CRISPR/Cas9 is unique among these techniques because of its remarkable efficacy, low risk of off-target repercussions, and ease of use. Some primary targets for developing CRISPR-mediated disease-resistant crops are host-susceptibility genes (the S gene method), resistance genes (R genes) and pathogen genetic material that prevents their development, broad-spectrum disease resistance. The use of genome editing methods has the potential to notably ameliorate crop disease resistance and transform agricultural practices in the future. This review highlights the impact of phyto-pathogens on agricultural productivity. Next, we discussed the tools for improving disease resistance while focusing on genome editing. We provided an update on the accomplishments of genome editing, and its potential to improve crop disease resistance against bacterial, fungal and viral pathogens in different crop systems. Finally, we highlighted the future challenges of genome editing in different crop systems for enhancing disease resistance.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/b14a3de8b607/fgeed-06-1399051-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/6ebc095895f3/fgeed-06-1399051-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/14e358d4055c/fgeed-06-1399051-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/11b290b37502/fgeed-06-1399051-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/b14a3de8b607/fgeed-06-1399051-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/6ebc095895f3/fgeed-06-1399051-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/14e358d4055c/fgeed-06-1399051-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/11b290b37502/fgeed-06-1399051-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/817a/11234172/b14a3de8b607/fgeed-06-1399051-g004.jpg

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引用本文的文献

[1]
Editorial: Microbial-mediated induced resistance: interactive effects for improving crop health.

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[2]
Engineering tomato disease resistance by manipulating susceptibility genes.

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[3]
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本文引用的文献

[1]
Genome editing of RECEPTOR-LIKE KINASE 902 confers resistance to necrotrophic fungal pathogens in Brassica napus without growth penalties.

Plant Biotechnol J. 2024-3

[2]
CRISPR/Cas9-guided editing of a novel susceptibility gene in potato improves Phytophthora resistance without growth penalty.

Plant Biotechnol J. 2024-1

[3]
Identification and Pathogenicity of Isolated from Soybean in Poland.

Pathogens. 2023-9-14

[4]
Overview on century progress in research on mosaic disease of apple (Malus domestica Borkh) incited by apple mosaic virus/apple necrotic mosaic virus.

Virology. 2023-10

[5]
Pseudomonas syringae Type III Secretion Protein HrpP Manipulates Plant Immunity To Promote Infection.

Microbiol Spectr. 2023-6-15

[6]
Tissue and Time Optimization for Real-Time Detection of Apple Mosaic Virus and Apple Necrotic Mosaic Virus Associated with Mosaic Disease of Apple ().

Viruses. 2023-3-21

[7]
Plant Microbiome: An Ocean of Possibilities for Improving Disease Resistance in Plants.

Microorganisms. 2023-2-3

[8]
Development of Diagnostic Markers and Applied for Genetic Diversity Study and Population Structure of Associated with Leaf Blight Complex of Wheat.

J Fungi (Basel). 2023-1-23

[9]
Overexpression of a beta-1,6-glucanase gene GluM in transgenic rice confers high resistance to rice blast, sheath blight and false smut.

Pest Manag Sci. 2023-6

[10]
Isolates of with Resistance to Multiple Fungicides from Soybean in Northern Thailand.

Plant Dis. 2023-9

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