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Silencing the Odorant Binding Protein RferOBP1768 Reduces the Strong Preference of Palm Weevil for the Major Aggregation Pheromone Compound Ferrugineol

机译:沉默气味的结合蛋白RferOBP1768降低棕榈象鼻虫对主要聚集信息素化合物紫杉醇的强烈偏好。

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摘要

In insects, perception of the environment—food, mates, and prey—is mainly guided by chemical signals. The dynamic process of signal perception involves transport to odorant receptors (ORs) by soluble secretory proteins, odorant binding proteins (OBPs), which form the first stage in the process of olfactory recognition and are analogous to lipocalin family proteins in vertebrates. Although OBPs involved in the transport of pheromones to ORs have been functionally identified in insects, there is to date no report for Coleoptera. Furthermore, there is a lack of information on olfactory perception and the molecular mechanism by which OBPs participate in the transport of aggregation pheromones. We focus on the red palm weevil (RPW) Rhynchophorus ferrugineus, the most devastating quarantine pest of palm trees worldwide. In this work, we constructed libraries of all OBPs and selected antenna-specific and highly expressed OBPs for silencing through RNA interference. Aggregation pheromone compounds, 4-methyl-5-nonanol (ferrugineol) and 4-methyl-5-nonanone (ferruginone), and a kairomone, ethyl acetate, were then sequentially presented to individual RPWs. The results showed that antenna-specific RferOBP1768 aids in the capture and transport of ferrugineol to ORs. Silencing of RferOBP1768, which is responsible for pheromone binding, significantly disrupted pheromone communication. Study of odorant perception in palm weevil is important because the availability of literature regarding the nature and role of olfactory signaling in this insect may reveal likely candidates representative of animal olfaction and, more generally, of molecular recognition. Knowledge of OBPs recognizing the specific pheromone ferrugineol will allow for designing biosensors for the detection of this key compound in weevil monitoring in date palm fields.
机译:在昆虫中,对环境(食物,伴侣和猎物)的感知主要由化学信号指导。信号感知的动态过程涉及通过可溶性分泌蛋白,气味结合蛋白(OBP)转运到气味受体(OR),它们形成嗅觉识别过程的第一阶段,类似于脊椎动物中的lipocalin家族蛋白。尽管已在昆虫中从功能上鉴定了涉及信息素向OR转运的OBP,但迄今为止,尚无鞘翅目的报道。此外,缺乏有关嗅觉感知和OBP参与聚集信息素运输的分子机制的信息。我们专注于红色棕榈象鼻虫(RPW)Rhynchophorus ferrugineus,这是全世界棕榈树中最具破坏性的检疫性有害生物。在这项工作中,我们构建了所有OBP的文库,并选择了特定于天线的高表达OBP,以通过RNA干扰沉默。然后依次将聚集信息素化合物,4-甲基-5-壬醇(ferrugineol)和4-甲基-5-壬酮(ferruginone)以及海洛酮,乙酸乙酯依次提供给各个RPW。结果表明,天线特异的RferOBP1768有助于捕获和转运铁氨酚到OR。负责信息素结合的RferOBP1768的沉默大大破坏了信息素通讯。研究棕榈象鼻虫中的气味感知非常重要,因为有关该昆虫嗅觉信号的性质和作用的文献资料可能会揭示出代表动物嗅觉的分子候选物,并且更普遍地是代表分子识别的候选物。 OBP认识到特定的信息素铁血红素醇将有助于设计生物传感器,以检测枣椰子田中象鼻虫中的这种关键化合物。

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