Cotter Aylwen, Dracatos Peter, Beddoe Travis, Johnson Kim
Australian Research Council Industrial Transformation Research Hub for Medicinal Agriculture, Bundoora 3083, Australia.
La Trobe Institute for Sustainable Agriculture and Food, Department of Ecological, Plant and Animal Sciences, La Trobe University, Bundoora 3083, Australia.
J Fungi (Basel). 2024 Dec 10;10(12):851. doi: 10.3390/jof10120851.
Closed environment agriculture (CEA) is rapidly gaining traction as a sustainable option to meet global food demands while mitigating the impacts of climate change. Fungal pathogens represent a significant threat to crop productivity in CEA, where the controlled conditions can inadvertently foster their growth. Historically, the detection of pathogens has largely relied on the manual observation of signs and symptoms of disease in the crops. These approaches are challenging at large scale, time consuming, and often too late to limit crop loss. The emergence of fungicide resistance further complicates management strategies, necessitating the development of more effective diagnostic tools. Recent advancements in technology, particularly in molecular and isothermal diagnostics, offer promising tools for the early detection and management of fungal pathogens. Innovative detection methods have the potential to provide real-time results and enhance pathogen management in CEA systems. This review explores isothermal amplification and other new technologies in detection of fungal pathogens that occur in CEA.
封闭环境农业(CEA)作为一种可持续选择,在满足全球粮食需求的同时减轻气候变化影响,正迅速获得关注。真菌病原体对CEA中的作物生产力构成重大威胁,在这种环境下,可控条件可能会无意中促进其生长。从历史上看,病原体的检测在很大程度上依赖于对作物疾病症状的人工观察。这些方法在大规模应用时具有挑战性,耗时且往往为时已晚,无法限制作物损失。杀菌剂抗性的出现使管理策略更加复杂,因此需要开发更有效的诊断工具。技术的最新进展,特别是分子诊断和等温诊断技术,为真菌病原体的早期检测和管理提供了有前景的工具。创新的检测方法有可能提供实时结果,并加强CEA系统中的病原体管理。本综述探讨了用于检测CEA中出现的真菌病原体的等温扩增及其他新技术。