Chen Qi, Zhu Xiaoyan, Kang Guoqing, Yu Qiling, Liu Qingxin, Du Lin, Yang Yi, He Xinyu, Zhao Ying, Zhang Junjie, Hu Ying, Ren Bingzhong
Jilin Provincial Key Laboratory of Animal Resource Conservation and Utilization, School of Life Sciences, Northeast Normal University, Changchun, China.
Key Laboratory of Vegetation Ecology, Ministry of Education, Northeast Normal University, Changchun, China.
Insect Sci. 2024 Feb;31(1):59-78. doi: 10.1111/1744-7917.13220. Epub 2023 Jul 18.
The Indian meal moth, Plodia interpunctella (Lepidoptera: Pyralidae), a globally distributed storage pest, relies on odors that are emitted from stored foods to select a suitable substrate for oviposition. However, the molecular mechanism underlying the chemical communication between P. interpunctella and its host remains elusive. In this study, 130 chemosensory genes were identified from the transcriptomes of 7 P. interpunctella tissues, and the quantitative expression levels of all 56 P. interpunctella odorant receptor genes (PintORs) were validated using real-time quantitative polymerase chain reaction. The functional characteristics of 5 PintORs with female antennae-biased expression were investigated using 2-electrode voltage clamp recordings in Xenopus laevis oocytes. PintOR23 was found to be specifically tuned to acetophenone. Acetophenone could elicit a significant electrophysiological response and only attracted mated females when compared with males and virgin females. In addition, molecular docking predicted that the hydrogen bonding sites, TRP-335 and ALA-167, might play key roles in the binding of PintOR23 to acetophenone. Our study provides valuable insights into the olfactory mechanism of oviposition substrate detection and localization in P. interpunctella and points toward the possibility of developing eco-friendly odorant agents to control pests of stored products.
印度谷螟(Plodia interpunctella,鳞翅目:螟蛾科)是一种全球分布的仓储害虫,它依靠储存食物散发的气味来选择合适的产卵基质。然而,印度谷螟与其寄主之间化学通讯的分子机制仍不清楚。在本研究中,从7个印度谷螟组织的转录组中鉴定出130个化学感应基因,并使用实时定量聚合酶链反应验证了所有56个印度谷螟气味受体基因(PintORs)的定量表达水平。使用非洲爪蟾卵母细胞的双电极电压钳记录研究了5个在雌虫触角中偏向表达的PintORs的功能特性。发现PintOR23对苯乙酮具有特异性调谐。与雄虫和未交配雌虫相比,苯乙酮能引发显著的电生理反应,且仅吸引已交配雌虫。此外,分子对接预测,氢键位点TRP-335和ALA-167可能在PintOR23与苯乙酮的结合中起关键作用。我们的研究为印度谷螟产卵基质检测和定位的嗅觉机制提供了有价值的见解,并指出了开发生态友好型气味剂来控制仓储产品害虫的可能性。