College of Agriculture and Biology, Liaocheng University, Liaocheng, China.
Institute of Urban Agriculture, Chinese Academy of Agricultural Sciences; Chengdu Agricultural Science and Technology Center, Chengdu, China.
Mol Plant Pathol. 2024 Nov;25(11):e70024. doi: 10.1111/mpp.70024.
Plant diseases caused by fungal phytopathogens have led to significant economic losses in agriculture worldwide. The management of fungal diseases is mainly dependent on the application of fungicides, which are not suitable for sustainable agriculture, human health, and environmental safety. Thus, it is necessary to develop novel targets and green strategies to mitigate the losses caused by these pathogens. The target of rapamycin (TOR) complexes and key components of the TOR signalling pathway are evolutionally conserved in pathogens and closely related to the vegetative growth and pathogenicity. As indicated in recent systems, chemical, genetic, and genomic studies on the TOR signalling pathway, phytopathogens with TOR dysfunctions show severe growth defects and nonpathogenicity, which makes the TOR signalling pathway to be developed into an ideal candidate target for controlling plant disease. In this review, we comprehensively discuss the current knowledge on components of the TOR signalling pathway in microorganisms and the diverse roles of various plant TOR in response to plant pathogens. Furthermore, we analyse a range of disease management strategies that rely on the TOR signalling pathway, including genetic modification technologies and chemical controls. In the future, disease control strategies based on the TOR signalling network are expected to become a highly effective weapon for crop protection.
植物真菌病原体引起的病害已导致全球农业的重大经济损失。真菌病害的防治主要依赖于杀菌剂的应用,但杀菌剂不适合可持续农业、人类健康和环境安全。因此,有必要开发新的靶标和绿色策略,以减轻这些病原体造成的损失。雷帕霉素靶蛋白 (TOR) 复合物及其 TOR 信号通路的关键组成部分在病原体中是进化保守的,与营养生长和致病性密切相关。正如最近的系统研究表明,对 TOR 信号通路的化学、遗传和基因组研究表明,TOR 功能失调的植物病原体表现出严重的生长缺陷和非致病性,这使得 TOR 信号通路成为控制植物病害的理想候选靶标。在这篇综述中,我们全面讨论了微生物中 TOR 信号通路的组成部分以及各种植物 TOR 在应对植物病原体时的多种作用的最新知识。此外,我们分析了一系列依赖于 TOR 信号通路的疾病管理策略,包括遗传修饰技术和化学控制。未来,基于 TOR 信号网络的疾病控制策略有望成为作物保护的一种高效武器。