National Key Laboratory of Green Pesticide, South China Agricultural University, Guangzhou, 510642, China.
Guangdong Biological Pesticide Engineering Technology Research Center, South China Agricultural University, Guangzhou, 510642, China.
ACS Nano. 2024 Feb 27;18(8):6533-6549. doi: 10.1021/acsnano.3c12352. Epub 2024 Feb 14.
Conventional agrochemicals are underutilized due to their large particle sizes, poor foliar retention rates, and difficult translocation in plants, and the development of functional nanodelivery carriers with high adhesion to the plant body surface and efficient uptake and translocation in plants remains challenging. In this study, a nanodelivery system based on a pectin-encapsulated iron-based MOF (TF@Fe-MOF-PT NPs) was constructed to enhance the utilization of thifluzamide (TF) in rice plants by taking advantage of the pectin affinity for plant cell walls. The prepared TF@Fe-MOF-PT NPs exhibited an average particle size of 126.55 nm, a loading capacity of 27.41%, and excellent dual-stimulus responses to reactive oxygen species and pectinase. Foliar washing experiments showed that the TF@Fe-MOF-PT NPs were efficiently adhered to the surfaces of rice leaves and stems. Confocal laser scanning microscopy showed that fluorescently labeled TF@Fe-MOF-PT NPs were bidirectionally delivered through vascular bundles in rice plants. The in vitro bactericidal activity of the TF@Fe-MOF-PT NPs showed better inhibitory activity than that of a TF suspension (TF SC), with an EC of 0.021 mg/L. A greenhouse test showed that the TF@Fe-MOF-PT NPs were more effective than TF SC at 7 and 14 d, with control effects of 85.88 and 78.59%, respectively. It also reduced the inhibition of seed stem length and root length by TF SC and promoted seedling growth. These results demonstrated that TF@Fe-MOF-PT NPs can be used as a pesticide nanodelivery system for efficient delivery and intelligent release in plants and applied for sustainable control of pests and diseases.
传统的农用化学品由于其粒径大、叶面保留率差、在植物体内不易转移等问题,利用率不高,而开发对植物体表具有高附着力、对植物具有高效吸收和转移能力的功能性纳米递药载体仍然具有挑战性。在这项研究中,构建了一种基于果胶包裹的铁基金属有机骨架(TF@Fe-MOF-PT NPs)的纳米递药系统,利用果胶对植物细胞壁的亲和力来提高噻呋酰胺(TF)在水稻植株中的利用率。所制备的 TF@Fe-MOF-PT NPs 的平均粒径为 126.55nm,载药量为 27.41%,对活性氧和果胶酶具有优异的双重刺激响应。叶面洗涤实验表明,TF@Fe-MOF-PT NPs 能够有效地附着在水稻叶片和茎的表面。共聚焦激光扫描显微镜显示,荧光标记的 TF@Fe-MOF-PT NPs 通过水稻植株中的维管束双向传递。TF@Fe-MOF-PT NPs 的体外杀菌活性比 TF 悬浮液(TF SC)表现出更好的抑制活性,EC 值为 0.021mg/L。温室试验表明,TF@Fe-MOF-PT NPs 在第 7 天和第 14 天的效果优于 TF SC,控制效果分别为 85.88%和 78.59%。它还降低了 TF SC 对种子茎长和根长的抑制作用,促进了幼苗的生长。这些结果表明,TF@Fe-MOF-PT NPs 可用作农药纳米递药系统,在植物体内实现高效传递和智能释放,并应用于病虫害的可持续控制。