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Genomic blueprints of soybean (Glycine max) pathogen resistance: revealing the key genes for sustainable agriculture

生物 蓝图 基因 钥匙(锁) 农业 植物生物学 生物技术 甘氨酸 遗传学 病菌 计算生物学 植物 生态学 工程类 机械工程 氨基酸
作者
Aiman Hina,Muhammad Khuram Razzaq,Asim Abbasi,Muhammad Shehzad,Muhammad Arshad,Tayyaba Sanaullah,Kamran Arshad,Ghulam Raza,Hayssam M. Ali,Faisal Hayat,Abdul Naeem,Nader R. Abdelsalam
出处
期刊:Functional Plant Biology 卷期号:51 (5)
标识
DOI:10.1071/fp23295
摘要

Soybean (Glycine max ) is an important oilseed, protein and biodiesel crop. It faces significant threats from bacterial, fungal and viral pathogens, which cause economic losses and jeopardises global food security. In this article, we explore the relationship between soybeans and these pathogens, focusing on the molecular responses that are crucial for soybeans defence mechanisms. Molecular responses involve small RNAs and specific genes, including resistance (R) genes that are pivotal in triggering immune responses. Functional genomics, which makes use of cutting-edge technologies, such as CRISPR Cas9 gene editing, allows us to identify genes that provide insights into the defence mechanisms of soybeans with the focus on using genomics to understand the mechanisms involved in host pathogen interactions and ultimately improve the resilience of soybeans. Genes like GmKR3 and GmVQ58 have demonstrated resistance against soybean mosaic virus and common cutworm, respectively. Genetic studies have identified quantitative trait loci (QTLs) including those linked with soybean cyst nematode, root-knot nematode and Phytophthora root and stem rot resistance. Additionally, resistance against Asian soybean rust and soybean cyst nematode involves specific genes and their variations in terms of different copy numbers. To address the challenges posed by evolving pathogens and meet the demands of a growing population, accelerated soybean breeding efforts leveraging functional genomics are imperative. Targeted breeding strategies based on a deeper understanding of soybean gene function and regulation will enhance disease resistance, ensuring sustainable agriculture and global food security. Collaborative research and continued technological advancements are crucial for securing a resilient and productive agricultural future.

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