State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Research Center of the Ministry of Education for High Gravity Engineering and Technology, Beijing University of Chemical Technology, Beijing 100029, China.
Langmuir. 2024 Aug 6;40(31):16511-16520. doi: 10.1021/acs.langmuir.4c01884. Epub 2024 Jul 29.
An intelligent delivery nanoformulation could enhance the utilization efficacy, uptake, and translocation of pesticides in plants. Herein, a redox/pH-triggered and fluorescent smart delivery nanoformulation was designed and constructed by using hollow mesoporous organosilica nanoparticles (HMONs) and ZnO quantum dots as the nanocarrier and capping agent, respectively. Boscalid was further loaded to generate Boscalid@HMONs@ZnO with a loading rate of 9.8% for controlling (). The quantity of boscalid released by Boscalid@HMONs@ZnO in a glutathione environment or at pH 3.0 was 1.3-fold and 1.9-fold higher than that in a neutral condition. Boscalid@HMONs@ZnO has 1.7-fold the toxicity index of boscalid technical against in antifungal experiments. Pot experiments revealed that the efficacy of Boscalid@HMONs@ZnO was significantly enhanced more than 1.27-fold compared to commercially available water-dispersible granules of boscalid. Due to the fluorescence properties of Boscalid@HMONs@ZnO, pesticide transport's real-time monitoring of pesticide translocation in tomato plants could be observed by confocal laser scanning microscopy. Fluorescence images revealed that HMONs@ZnO had been effectively transported via treated leaves or roots in tomato plants. This research showed the successful application of HMONs@ZnO as a nanocarrier for controlling disease and offered an effective avenue to explore the real-time tracking of pesticide translocation in plants.
一种智能递送纳米制剂可以提高农药在植物中的利用效率、吸收和转运。在此,设计并构建了一种氧化还原/pH 触发和荧光智能递药纳米制剂,使用中空介孔有机硅纳米粒子(HMONs)和氧化锌量子点分别作为纳米载体和封端剂。进一步负载了百菌清,生成了载药量为 9.8%的 Boscalid@HMONs@ZnO,以控制()。在谷胱甘肽环境或 pH 值为 3.0 的条件下,Boscalid@HMONs@ZnO 释放的百菌清数量分别是中性条件下的 1.3 倍和 1.9 倍。在抗真菌实验中,Boscalid@HMONs@ZnO 的毒性指数是百菌清技术的 1.7 倍。盆栽实验表明,与市售的百菌清水分散粒剂相比,Boscalid@HMONs@ZnO 的药效显著提高了 1.27 倍以上。由于 Boscalid@HMONs@ZnO 具有荧光性质,可以通过共聚焦激光扫描显微镜观察到番茄植株中农药转运的实时监测。荧光图像显示,HMONs@ZnO 已被有效运通过处理过的番茄叶片或根部。本研究成功地将 HMONs@ZnO 应用于控制疾病的纳米载体,并为探索植物中农药转运的实时跟踪提供了有效的途径。