Makhumbila Penny, Rauwane Molemi, Muedi Hangwani, Figlan Sandiswa
Department of Agriculture and Animal Health, School of Agriculture and Life Sciences, College of Agriculture and Environmental Sciences, University of South Africa, 28 Pioneer Ave, Florida Park, Roodeport 1709, South Africa.
Research Support Services, North West Provincial Department of Agriculture and Rural Development, 114 Chris Hani Street, Potchefstroom 2531, South Africa.
Plants (Basel). 2022 Jul 1;11(13):1756. doi: 10.3390/plants11131756.
Legume crops such as common bean, pea, alfalfa, cowpea, peanut, soybean and others contribute significantly to the diet of both humans and animals. They are also important in the improvement of cropping systems that employ rotation and fix atmospheric nitrogen. Biotic stresses hinder the production of leguminous crops, significantly limiting their yield potential. There is a need to understand the molecular and biochemical mechanisms involved in the response of these crops to biotic stressors. Simultaneous expressions of a number of genes responsible for specific traits of interest in legumes under biotic stress conditions have been reported, often with the functions of the identified genes unknown. Metabolomics can, therefore, be a complementary tool to understand the pathways involved in biotic stress response in legumes. Reports on legume metabolomic studies in response to biotic stress have paved the way in understanding stress-signalling pathways. This review provides a progress update on metabolomic studies of legumes in response to different biotic stresses. Metabolome annotation and data analysis platforms are discussed together with future prospects. The integration of metabolomics with other "omics" tools in breeding programmes can aid greatly in ensuring food security through the production of stress tolerant cultivars.
诸如菜豆、豌豆、苜蓿、豇豆、花生、大豆等豆类作物对人类和动物的饮食都有重要贡献。它们在采用轮作并固定大气氮的种植系统改良中也很重要。生物胁迫阻碍豆类作物的生产,显著限制其产量潜力。有必要了解这些作物对生物胁迫因子响应所涉及的分子和生化机制。据报道,在生物胁迫条件下,许多负责豆类特定感兴趣性状的基因会同时表达,而所鉴定基因的功能往往未知。因此,代谢组学可以作为一种补充工具,用于了解豆类生物胁迫响应所涉及的途径。关于豆类对生物胁迫响应的代谢组学研究报告为理解胁迫信号通路铺平了道路。本综述提供了豆类对不同生物胁迫响应的代谢组学研究进展更新。讨论了代谢组注释和数据分析平台以及未来前景。在育种计划中将代谢组学与其他“组学”工具整合,通过培育耐胁迫品种,可极大地有助于确保粮食安全。