Department of Botany and Plant Sciences, University of California, Riverside, CA, 92521, USA.
Department of Civil and Environmental Engineering, Carnegie Mellon University, Pittsburgh, PA, 15213, USA.
Small. 2024 Feb;20(7):e2304588. doi: 10.1002/smll.202304588. Epub 2023 Oct 15.
Current practices for delivering agrochemicals are inefficient, with only a fraction reaching the intended targets in plants. The surfaces of nanocarriers are functionalized with sucrose, enabling rapid and efficient foliar delivery into the plant phloem, a vascular tissue that transports sugars, signaling molecules, and agrochemicals through the whole plant. The chemical affinity of sucrose molecules to sugar membrane transporters on the phloem cells enhances the uptake of sucrose-coated quantum dots (sucQD) and biocompatible carbon dots with β-cyclodextrin molecular baskets (suc-β-CD) that can carry a wide range of agrochemicals. The QD and CD fluorescence emission properties allowed detection and monitoring of rapid translocation (<40 min) in the vasculature of wheat leaves by confocal and epifluorescence microscopy. The suc-β-CDs more than doubled the delivery of chemical cargoes into the leaf vascular tissue. Inductively coupled plasma mass spectrometry (ICP-MS) analysis showed that the fraction of sucQDs loaded into the phloem and transported to roots is over 6.8 times higher than unmodified QDs. The sucrose coating of nanoparticles approach enables unprecedented targeted delivery to roots with ≈70% of phloem-loaded nanoparticles delivered to roots. The use of plant biorecognition molecules mediated delivery provides an efficient approach for guiding nanocarriers containing agrochemicals to the plant vasculature and whole plants.
目前施洒农用化学品的方法效率低下,只有一小部分能到达植物的预期目标。纳米载体的表面用蔗糖进行功能化,从而能够快速有效地将农用化学品递送至植物韧皮部,韧皮部是一种运输糖、信号分子和农用化学品的维管组织。蔗糖分子与韧皮部细胞上的糖膜转运蛋白之间的化学亲和力增强了对蔗糖包覆量子点(sucQD)和带β-环糊精分子篮(suc-β-CD)的生物相容碳点的摄取,这些碳点可以携带各种农用化学品。QD 和 CD 的荧光发射特性允许通过共聚焦和荧光显微镜对小麦叶片中的快速转运(<40 分钟)进行检测和监测。与未修饰的 QD 相比, suc-β-CDs 将化学货物递送至叶片血管组织中的数量增加了一倍多。电感耦合等离子体质谱(ICP-MS)分析表明,装载到韧皮部并运输到根部的 sucQD 分数比未修饰的 QD 高 6.8 倍以上。纳米颗粒的蔗糖涂层方法使以前所未有的靶向方式将农用化学品递送至根部成为可能,约 70%装载到韧皮部的纳米颗粒被递送至根部。使用植物生物识别分子介导的递药方法为引导含有农用化学品的纳米载体进入植物血管系统和整株植物提供了一种有效的方法。