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中文摘要
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描述(由申请人提供):拟议研究的长期目标是阐明果蝇(Drosophila melanogaster)通过接触化学感觉检测和区分化学物质的分子机制。接触化学感觉使苍蝇能够区分甜味和苦味分子,以及非挥发性信息素。昆虫的味觉器官表达多种多样的候选分子检测器。这些包括味觉受体(GR),TRP通道,离子型受体(IR)和气味结合蛋白(OBP),后者促进受体蛋白对化学物质的检测。然而,大多数这些候选味觉受体和结合蛋白的功能是未知的,或了解甚少。我们提出的实验,解剖苍蝇接触化学感觉的机制,使用多学科的方法,包括电生理学,行为,遗传学和细胞生物学的方法。在过去的几年中,GRs广泛用于检测糖和苦味化合物的概念已经得到证实。然而,GR的生物化学功能尚不清楚。目的1是检验GRs是味素激活的阳离子通道的假设。目标2解决了味觉中一个长期存在的问题-酸受体的性质。这些受体被认为是阳离子通道,并且已经提出了许多候选者。我们提出的实验,解剖是否需要IR的反应,最酸tastants,细胞需要的IR,并调查的贡献,主要是在味觉受体神经元表达的其他两个IR。目的3研究气味结合蛋白在接触性化学感觉中的作用。已知OBP主要用于促进某些嗅觉刺激的检测。我们发现一些OBP在味觉器官中高度富集,超过其他组织高达800倍。实验提出了检验的假设,味觉OBP促进非挥发性信息素介导的行为。最后,我们的最后一个目标是解剖选择性味觉可塑性的分子,细胞和生物学基础。我们目前的初步数据表明,苍蝇暴露于樟脑减少他们的排斥,特别是樟脑,而不是其他苦味的促味剂,这种味觉可塑性的结果从TRP通道的水平降低。目的4是区分不同的可能的模型,这种味觉可塑性,并解决适应一些,但不是所有的,没有吸引力的tastants的生物学基础。这项研究的另一个长期目标是将研究结果应用于控制传播疾病的害虫。
英文摘要
DESCRIPTION (provided by applicant): The long-term goal of the proposed research is to clarify the molecular mechanisms underlying the detection and discrimination of chemicals through contact chemosensation in the fruit fly, Drosophila melanogaster. Contact chemosensation allows flies to distinguish sweet from bitter molecules, as well as nonvolatile pheromones. Insect gustatory organs express a diversity of candidate molecular detectors. These include gustatory receptors (GRs), TRP channels, ionotropic receptors (IRs) and odorant binding proteins (OBPs), the latter of which promote the detection of chemicals by receptor proteins. However, the functions of most of these candidate gustatory receptors and binding proteins are unknown, or are understood poorly. We propose experiments to dissect the mechanisms underlying contact chemosensation in flies using a multidisciplinary approach that includes electrophysiology, behavior, genetics, and cell biological approaches. During the last few years, the concept that GRs are required broadly for sensing sugars and bitter-tasting compounds has been confirmed. However, the biochemical functions of GRs are unclear. Aim 1 is to test the hypothesis that GRs are tastant-activated cation channels. Aim 2 addresses one of the longstanding questions in taste sensation- the nature of sour receptors. These receptors are thought to be cation channels, and many candidates have been suggested. We propose experiments to dissect whether an IR is required for the responses to most sour tastants, which cells require the IR, and investigate the contributions of two other IRs that are expressed primarily in gustatory receptor neurons. Aim 3 is devoted to characterizing the roles for odorant binding proteins (OBPs) in contact chemosensation. OBPs are known primarily for promoting the detection of certain olfactory stimuli. We found that some OBPs are highly enriched in taste organs up to 800- fold over other tissues. Experiments are proposed to test the hypothesis that gustatory OBPs promote behaviors mediated by nonvolatile pheromones. Finally, the goal of our last aim is to dissect the molecular, cellular and biological basis for selective taste plasticity. We present preliminary data indicating that flies exposed to camphor reduce their repulsion specifically to camphor and not other bitter tastants, and this taste plasticity results from a reduction in the level of a TRP channel. Aim 4 is to distinguish between different possible models underlying this taste plasticity, and to address the biological basis for adaptation to some, but not all, unappealing tastants. An additional long-term goal of this research is to apply the findings to the control of insect pests that spread disease.
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