State Key Laboratory of Rice Biology, and Ministry of Agricultural and Rural Affairs Laboratory of Molecular Biology of Crop Pathogens and Insects, Zhejiang University, Hangzhou, China.
Key Laboratory of Biology of Crop Pathogens and Insects of Zhejiang Province, Institute of Pesticide and Environmental Toxicology, College of Agriculture and Biotechnology, Zhejiang University, Hangzhou, China.
Nat Microbiol. 2023 Aug;8(8):1419-1433. doi: 10.1038/s41564-023-01379-x. Epub 2023 May 4.
Mutualistic interactions between host plants and their microbiota have the potential to provide disease resistance. Most research has focused on the rhizosphere, but it is unclear how the microbiome associated with the aerial surface of plants protects against infection. Here we identify a metabolic defence underlying the mutualistic interaction between the panicle and the resident microbiota in rice to defend against a globally prevalent phytopathogen, Ustilaginoidea virens, which causes false-smut disease. Analysis of the 16S ribosomal RNA gene and internal transcribed spacer sequencing data identified keystone microbial taxa enriched in the disease-suppressive panicle, in particular Lactobacillus spp. and Aspergillus spp. Integration of these data with primary metabolism profiling, host genome editing and microbial isolate transplantation experiments revealed that plants with these taxa could resist U. virens infection in a host branched-chain amino acid (BCAA)-dependent manner. Leucine, a predominant BCAA, suppressed U. virens pathogenicity by inducing apoptosis-like cell death through HO overproduction. Additionally, preliminary field experiments showed that leucine could be used in combination with chemical fungicides with a 50% reduction in dose but similar efficacy to higher fungicide concentrations. These findings may facilitate protection of crops from panicle diseases prevalent at a global scale.
植物与其微生物组之间的互利相互作用具有提供疾病抗性的潜力。大多数研究都集中在根际,但目前尚不清楚与植物气生表面相关的微生物组如何抵御感染。在这里,我们确定了水稻穗部与其驻留微生物组之间互利相互作用的一种代谢防御机制,以抵御一种普遍存在的植物病原菌——稻曲病菌,该病菌会导致假黑粉病。16S 核糖体 RNA 基因和内部转录间隔区测序数据分析鉴定了在抑制疾病的穗部中富集的关键微生物类群,特别是乳杆菌属和曲霉属。将这些数据与初级代谢物分析、宿主基因组编辑和微生物分离物移植实验相结合,揭示了具有这些类群的植物可以通过宿主支链氨基酸(BCAA)依赖性方式抵抗稻曲病菌的感染。亮氨酸是一种主要的 BCAA,通过 HO 过量产生诱导细胞凋亡样死亡来抑制稻曲病菌的致病性。此外,初步田间试验表明,亮氨酸可与化学杀菌剂联合使用,在降低 50%剂量的情况下,其效果与较高杀菌剂浓度相当。这些发现可能有助于保护作物免受全球范围内普遍存在的穗部疾病的侵害。