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阳离子星型聚合物对捕食性瓢虫的生物毒性评价及聚合物载药与瓢虫协同防治害虫

Biotoxicity Evaluation of a Cationic Star Polymer on a Predatory Ladybird and Cooperative Pest Control by Polymer-Delivered Pesticides and Ladybird.

机构信息

Department of Plant Biosecurity and MOA Key Lab of Pest Monitoring and Green Management, College of Plant Protection, China Agricultural University, Beijing 100193, P. R. China.

State Key Lab of Chemical Resource Engineering, Beijing Lab of Biomedical Materials, Beijing University of Chemical Technology, Beijing 100029, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Feb 2;14(4):6083-6092. doi: 10.1021/acsami.1c24077. Epub 2022 Jan 24.

Abstract

Although employing nanocarriers for gene/drug delivery shows great potential in agricultural fields, the biotoxicity of nanocarriers is a major concern for large-scale applications. Herein, we synthesized a cationic star polymer (SPc) as a pesticide nanocarrier/adjuvant to evaluate its safety against a widely used predatory ladybird (). The application of SPc at extremely high concentrations nearly did not influence the hatching of ladybird eggs but it led to the death of ladybird larvae at lethal concentration 50 (LC) values of 43.96 and 19.85 mg/mL through the soaking and feeding methods, respectively. The oral feeding of SPc downregulated many membrane protein genes and lysosome genes significantly, and the cell membrane and nucleus in gut tissues were remarkably damaged by SPc application, revealing that the lethal mechanism might be SPc-mediated membrane damage. Furthermore, the oral feeding of SPc increased the relative abundance of bacteria in ladybird guts to result in bacterial infection. Coapplication of ladybird and SPc-loaded thiamethoxam/matrine achieved desired control efficacies of more than 80% against green peach aphids, revealing that the coapplication could overcome the slow-acting property of ladybirds. To our knowledge, this is the first attempt to investigate the polymer-mediated lethal mechanism toward natural enemies and explore the possibility of coapplying SPc-loaded pesticides and natural enemies for pest management.

摘要

尽管纳米载体在农业领域中的基因/药物传递方面具有巨大的潜力,但纳米载体的生物毒性是大规模应用的主要关注点。在此,我们合成了一种阳离子星形聚合物 (SPc) 作为农药纳米载体/佐剂,以评估其对广泛使用的捕食性瓢虫()的安全性。SPc 的应用在极高浓度下几乎不会影响瓢虫卵的孵化,但通过浸泡和喂食两种方法,SPc 导致瓢虫幼虫在致死浓度 50(LC)值为 43.96 和 19.85 mg/mL 时死亡。SPc 的口服摄入显著下调了许多膜蛋白基因和溶酶体基因,并且 SPc 的应用显著破坏了肠道组织中的细胞膜和细胞核,表明致死机制可能是 SPc 介导的膜损伤。此外,SPc 的口服摄入增加了瓢虫肠道中细菌的相对丰度,导致细菌感染。瓢虫和载有噻虫嗪/苦参碱的 SPc 的共同应用实现了对桃蚜超过 80%的理想防治效果,表明共同应用可以克服瓢虫的缓慢作用特性。据我们所知,这是首次尝试研究聚合物介导的对天敌的致死机制,并探索共同应用载有 SPc 的农药和天敌进行害虫管理的可能性。

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