Function and Mechanism of ZcucOBP14 in Regulating Olfactory Recognition and Insecticide Susceptibility in Zeugodacus cucurbitae

触角电图 生物 有害生物分析 嗅觉 转录因子 RNA干扰 基因敲除 生物测定 嗅觉系统 细胞生物学 功能(生物学) 生物化学 化学生态学 遗传学 病虫害综合治理 抄写(语言学) 变构调节 结合位点 配体(生物化学) 黑腹果蝇 核糖核酸 气味 化学受体 配体结合分析 序列比对 对接(动物) 计算生物学 寄主(生物学) 系统发育树 机制(生物学) 进化生物学 序列母题
作者
Yi-Xiang Wang,Yi Yang,C Y,Zhenya Tian,Y ZHANG,H Chen,Weihua Ma,Zhongshi Zhou
出处
期刊:International Journal of Molecular Sciences [Multidisciplinary Digital Publishing Institute]
卷期号:27 (12): 5158-5158 被引量:1
标识
DOI:10.3390/ijms27125158
摘要

The melon fly, Zeugodacus cucurbitae (Coquillett), is a globally significant agricultural pest causing substantial economic losses. Odorant-binding proteins (OBPs) are critical of the insect olfactory system, yet their specific physiological functions in Z. cucurbitae remain largely uncharacterized. In this study, we functionally characterized ZcucOBP14 and investigated its putative involvement in host chemoreception and insecticide tolerance. Sequence alignment and phylogenetic analysis indicated that ZcucOBP14 belongs to the Minus-C OBP subfamily, and quantitative reverse transcription PCR (RT-qPCR) showed that it was predominantly expressed in both the head and abdomen. Fluorescence binding assays revealed that ZcucOBP14 exhibited broad binding affinity to 11 host plant volatiles, three sex pheromones, and two insecticides. Subsequent electroantennography (EAG) and behavioral bioassays identified isopulegol, 1-hexanol, linalool, and α-pinene as key ligands regulating the behavioral responses of Z. cucurbitae. RNA interference (RNAi)-mediated knockdown of ZcucOBP14 significantly reduced EAG responses to key ligands, eliminated behavioral preference, and increased insecticide-induced mortality by 20%. Molecular docking further identified that Tyr71, Ile67, Trp50, Val107, Phe116 and Leu70 were critical residues involved in ligand interactions. Collectively, these findings highlight the indispensable role of ZcucOBP14 in olfactory perception and its contribution to insecticide tolerance, laying a solid theoretical foundation for the development of novel behavior-modifying agents, attractants, and optimized integrated pest management (IPM) strategies against this pest.
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