Li Yi-Jiangcheng, Hong Tian-Le, Chen Hong-Chao, Gu Feng-Ming, Liu Zhi-Xiang, You Shuai, Wu Fu-An, Sheng Sheng, Wang Jun
School of Biotechnology, Jiangsu University of Science and Technology, Zhenjiang 212100, P. R. China.
Sericultural Research Institute, Chinese Academy of Agricultural Sciences, Zhenjiang 212100, P. R. China.
J Agric Food Chem. 2023 Mar 22;71(11):4498-4509. doi: 10.1021/acs.jafc.2c08390. Epub 2023 Mar 8.
is a preponderant parasitic wasp of various lepidopteran pests. The extensive application of broad-spectrum insecticides usually causes serious threats to the olfactory recognition of nontarget insects such as parasitoid wasps. However, the binding mechanism of odorant-binding proteins (OBPs) to insecticides in parasitoid wasps remains unknown. Herein, we find that the MpulOBP6 protein had a strong binding affinity to three insecticides (phoxim, chlorpyrifos, and chlorfenapyr). Results of computational simulations revealed that the hydrophobic interaction contributed by a mass of nonpolar amino acid residues was the primary driving force in the formation and stabilization of MpulOBP6-insecticide complexes. Among them, four residues (Met75, Val84, Phe121, and Pro122) and two residues (Val84 and Phe111) play an essential role in the binding of MpulOBP6 to phoxim and chlorfenapyr, respectively. Our findings could be instrumental to elucidate the effects of insecticide application toward the olfactory recognition of nontarget insects in the processes of agricultural production.
是多种鳞翅目害虫的优势寄生蜂。广谱杀虫剂的广泛应用通常会对诸如寄生蜂等非靶标昆虫的嗅觉识别造成严重威胁。然而,寄生蜂中气味结合蛋白(OBPs)与杀虫剂的结合机制仍不清楚。在此,我们发现MpulOBP6蛋白对三种杀虫剂(辛硫磷、毒死蜱和溴虫腈)具有很强的结合亲和力。计算模拟结果表明,大量非极性氨基酸残基贡献的疏水相互作用是MpulOBP6-杀虫剂复合物形成和稳定的主要驱动力。其中,四个残基(Met75、Val84、Phe121和Pro122)和两个残基(Val84和Phe111)分别在MpulOBP6与辛硫磷和溴虫腈的结合中起关键作用。我们的研究结果有助于阐明在农业生产过程中施用杀虫剂对非靶标昆虫嗅觉识别的影响。