Xiao Wenhui, Du Jiang, Zheng Yuxin, Chen Shanshan, Liu Zhanyun, Chen Fengping, Liu Feng, Li Beixing, Liu Xili, Zhang Can
Department of Plant Pathology, China Agricultural University, Beijing, 100193, China.
State Key Laboratory of Agricultural and Forestry Biosecurity & Key Lab of Biopesticide and Chemical Biology, Ministry of Education, College of Plant Protection, Fujian Agriculture and Forestry University, Fuzhou, 350002, Fujian, China.
J Nanobiotechnology. 2025 Jan 31;23(1):67. doi: 10.1186/s12951-025-03118-2.
Utilizing nanotechnology for pesticide delivery can enhance their uptake and distribution in plants, thereby boosting pesticide efficiency. Fluazinam, a highly effective broad-spectrum fungicide with unique mode of action, is hindered by its poor systemic conductivity, limiting its field control efficacy. In this study, fluazinam-loaded nanocapsules were developed, which exhibited significantly higher inhibitory activity against various Phytophthora species compared to the commercial suspension concentrate. Notably, the nanocapsules demonstrated pronounced effects on reducing ATP content in Phytophthora capsici and effectively controlled pepper blight and cucumber downy mildew. Tracking the distribution of fluorescein isothiocyanate (FITC) fluorescein-labeled fluazinam nanocapsules revealed their presence in roots seven days after treatment. High-performance liquid chromatography (HPLC) analysis confirmed the easy absorption and transport of fluazinam nanocapsules by pepper plants. Moreover, treatment with fluazinam nanocapsules significantly increased the expression of two exocytosis genes, FACP and RABF2a, in pepper tissues. Lastly, fluazinam nanocapsules were found to enhance the relative abundance of beneficial bacteria in the soil microbial community. This study presents a promising approach to enhance the upward transport capability of non-systemic pesticides, offering novel insights into their application and improved efficacy.
利用纳米技术进行农药递送可以提高其在植物中的吸收和分布,从而提高农药效率。氟唑菌酰胺是一种具有独特作用方式的高效广谱杀菌剂,但其较差的内吸传导性限制了其田间防治效果。在本研究中,制备了负载氟唑菌酰胺的纳米胶囊,与市售悬浮剂相比,其对多种疫霉属物种表现出显著更高的抑制活性。值得注意的是,纳米胶囊对降低辣椒疫霉中的ATP含量有显著作用,并有效防治了辣椒疫病和黄瓜霜霉病。追踪异硫氰酸荧光素(FITC)荧光标记的氟唑菌酰胺纳米胶囊的分布发现,处理七天后它们存在于根部。高效液相色谱(HPLC)分析证实了氟唑菌酰胺纳米胶囊易于被辣椒植株吸收和运输。此外,用氟唑菌酰胺纳米胶囊处理显著增加了辣椒组织中两个胞吐基因FACP和RABF2a的表达。最后,发现氟唑菌酰胺纳米胶囊可提高土壤微生物群落中有益细菌的相对丰度。本研究提出了一种提高非内吸性农药向上运输能力的有前景的方法,为其应用和提高药效提供了新的见解。