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纳米载体介导的杀虫剂传入跗节可提高臭虫死亡率。

Nanocarrier mediated delivery of insecticides into tarsi enhances stink bug mortality.

机构信息

Department of Botany and Plant Sciences, University of California, Riverside, CA, 92521, USA.

Department of Entomology, University of California, Riverside, CA, 92521, USA.

出版信息

Nat Commun. 2024 Nov 11;15(1):9737. doi: 10.1038/s41467-024-54013-7.

Abstract

Current delivery practices for insecticide active ingredients are inefficient with only a fraction reaching their intended target. Herein, we developed carbon dot based nanocarriers with molecular baskets (γ-cyclodextrin) that enhance the delivery of active ingredients into insects (southern green stink bugs, Nezara viridula L.) via their tarsal pores. Nezara viridula feeds on leguminous plants worldwide and is a primary pest of soybeans. After two days of exposure, most of the nanocarriers and their active ingredient cargo (>85%) remained on the soybean leaf surface, rendering them available to the insects. The nanocarriers enter stink bugs through their tarsi, enhancing the delivery of a fluorescent chemical cargo by 2.6 times. The insecticide active ingredient nanoformulation (10 ppm) was 25% more effective in controlling the stink bugs than the active ingredient alone. Styletectomy experiments indicated that the improved active ingredient efficacy was due to the nanoformulation entering through the insect tarsal pores, consistent with fluorescent chemical cargo assays. This new nanopesticide approach offers efficient active ingredient delivery and improved integrated pest management for a more sustainable agriculture.

摘要

目前,杀虫剂活性成分的传递方式效率低下,只有一小部分能够到达预期的目标。在此,我们开发了基于碳点的纳米载体,其具有分子篮(γ-环糊精),可通过跗节孔增强活性成分向昆虫(南方绿椿象,Nezara viridula L.)的传递。南方绿椿象在全世界以豆科植物为食,是大豆的主要害虫。暴露两天后,大多数纳米载体及其活性成分货物(>85%)仍留在大豆叶片表面,使其对昆虫可用。纳米载体通过跗节进入椿象体内,将荧光化学货物的传递效率提高了 2.6 倍。与单独使用活性成分相比,这种杀虫剂活性成分纳米制剂(10ppm)对控制椿象的效果提高了 25%。去跗节实验表明,纳米制剂通过昆虫跗节孔进入,这与荧光化学货物测定结果一致,提高了活性成分的功效。这种新的纳米农药方法为更可持续的农业提供了高效的活性成分传递和改进的综合虫害管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8198/11554816/ecfcdc22eb32/41467_2024_54013_Fig1_HTML.jpg

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