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用于增强水稻中农药递送和害虫防治的氧化还原和近红外光响应纳米平台:构建、功效和潜在机制。

Redox and Near-Infrared Light-Responsive Nanoplatform for Enhanced Pesticide Delivery and Pest Control in Rice: Construction, Efficacy, and Potential Mechanisms.

机构信息

The Center of Crop Nanobiotechnology, College of Plant Science and Technology, Huazhong Agricultural University, No. 1 Shizishan Street, Wuhan 430074, China.

出版信息

ACS Appl Mater Interfaces. 2023 Sep 6;15(35):41351-41361. doi: 10.1021/acsami.3c08413. Epub 2023 Aug 16.

DOI:10.1021/acsami.3c08413
PMID:37584154
Abstract

The brown planthopper, (Stål), is a major rice pest in various Asian countries, causing significant negative impacts on rice yield and quality. In this study, we developed a novel nanoplatform (NIT@MON@CuS) for pesticide delivery that responds to redox and near-infrared light stimuli. The nanoplatform consisted of CuS nanoparticles with mesoporous organic silica (MON), loaded with nitenpyram (NIT). With an average size of 190 nm and a loading efficiency of 22%, NIT@MON@CuS exhibited remarkable thermal response in the near-infrared region, demonstrating excellent photothermal conversion ability and stability. In vitro release kinetics demonstrated the rapid release of nitenpyram under near-infrared light and glutathione conditions, facilitating a satisfactory temperature increase and accelerated drug release. The NIT@MON@CuS-treated group exhibited a higher mortality of , increasing from 62 to 88% compared to the group treated with nitenpyram technical after 96 h. Bioassay revealed that NIT@MON@CuS significantly enhanced nitenpyram toxicity by more than 1.4-fold against both laboratory insecticide-resistant and field strains of . Furthermore, RT-qPCR results demonstrated that MON@CuS had the capability to reduce P450 gene expression, thereby improving the sensitivity of to insecticides. These findings suggest that MON@CuS holds great potential as an intelligent pest control platform, offering a sustainable and efficient approach to protect crops against pests.

摘要

褐飞虱(Stål)是亚洲各国主要的水稻害虫,对水稻产量和质量造成重大负面影响。在本研究中,我们开发了一种新型的农药递送纳米平台(NIT@MON@CuS),该平台对氧化还原和近红外光刺激有响应。纳米平台由载有吡虫啉(NIT)的介孔有机硅(MON)负载的 CuS 纳米粒子组成。NIT@MON@CuS 的平均尺寸为 190nm,载药效率为 22%,在近红外区域表现出显著的热响应,具有优异的光热转换能力和稳定性。体外释放动力学研究表明,在近红外光和谷胱甘肽条件下,NIT 能够快速释放,从而实现令人满意的温度升高和加速药物释放。与吡虫啉技术处理组相比,NIT@MON@CuS 处理组的褐飞虱死亡率从 62%增加到 88%,96 小时后。生物测定表明,NIT@MON@CuS 显著提高了吡虫啉对实验室抗药性和田间种群的毒力,超过 1.4 倍。此外,RT-qPCR 结果表明,MON@CuS 具有降低 P450 基因表达的能力,从而提高了褐飞虱对杀虫剂的敏感性。这些发现表明,MON@CuS 作为一种智能害虫控制平台具有巨大的潜力,为保护作物免受害虫侵害提供了一种可持续和有效的方法。

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