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Exploiting toxins to probe sensory signaling

Exploiting toxins to probe sensory signaling
利用毒素来探测感觉信号
批准号:
8816556
负责人:
David Julius
金额:
$45.81万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-07-01 至 2018-08-31

项目摘要

项目成果

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中文摘要
翻译
描述(由申请人提供):天然植物产品已成为解释躯体感觉、伤害感受和疼痛的细胞和分子机制的非常有价值的工具。值得注意的例子包括使用天然镇痛剂,如吗啡(来自罂粟)和水杨酸盐(来自杨柳皮),分别发现阿片受体和环氧化酶。其他重要的例子包括使用天然刺激物,如辣椒素(来自辣椒)和薄荷醇(来自薄荷叶),以识别分别检测热和冷的离子通道。事实上,这些蛋白质中的每一种都代表了急性或慢性疼痛的药理学管理的经验证的或潜在的靶标。植物并不是唯一能够产生针对感觉神经元或其他可兴奋细胞的化学物质的植物。事实上,动物(从蜘蛛纲动物到哺乳动物)的毒液代表了一个巨大的药典,具有很大的潜力,产生新的药物,以确定或表征受体,离子通道,或其他信号分子,有助于感觉转导。事实上,在上一个资助期,我们确定了两种这样的毒素-一种来自蜘蛛,另一种来自蛇-分别作为TRPV 1和ASIC 1通道的新型,强效和高选择性激动剂。在每种情况下,这些毒素都能够以原子分辨率阐明通道的激活、完全开放状态,为通道门控和调节的结构机制提供前所未有的见解。该提案建立在我们在毒素发现和表征方面的成功和专业知识的基础上,目标是扩大用于研究已知或新型体感受体的药理学试剂库。第一个目标集中于表征我们在基于感觉神经元的筛选测定中鉴定的两种蜘蛛毒素,并且其靶向由这些细胞表达的特定电压门控钠通道(Nav)亚型。我们建议鉴定指定毒素敏感性的Nav通道结构域,并解释其毒性。 亚型选择性此外,我们将使用小鼠遗传学在体内测试毒素选择性, 确定介导这些毒素在细胞和行为范例中的兴奋和致痛作用的感觉神经元的亚群。第二个目标是集中在表征两种新的毒素-一种来自蜈蚣,另一种来自蛇-我们也通过功能筛选确定,并激活初级传入感觉神经元引起小鼠的伤害性反应。我们建议确定这些毒素的分子靶点,并确定它们激活疼痛通路的感觉神经元的信号传导机制。这些研究将揭示新的感觉转导分子和/或提供强大的新工具,以确定已知的传感器如何工作,以调节伤害感受器的兴奋性。从这项工作中收集的信息将提供重要的药理学线索和有关镇痛剂的发展见解。
英文摘要
DESCRIPTION (provided by applicant): Natural plant products have served as tremendously valuable tools for deciphering cellular and molecular mechanisms contributing to somatosensation, nociception, and pain. Notable examples include the use of natural analgesics, such as morphine (from the opium poppy) and salicylate (from willow bark) to discover opioid receptors and cyclooxgenases, respectively. Other important examples include the use of natural irritants, such as capsaicin (from chili peppers) and menthol (from mint leaves) to identify ion channels that detect heat and cold, respectively. Indeed, each of these proteins represents a validated or potential target for pharmacological management of acute or chronic pain. Plants are not unique in their capacity to produce chemical agents that target sensory neurons or other excitable cells. Indeed, venoms from animals (ranging from arachnids to mammals) represent a vast pharmacopoeia that has great potential to yield novel agents with which to identify or characterize receptors, ion channels, or other signaling molecules that contribute to sensory transduction. Indeed, in the previous funding period we identified two such toxins - one from spider and another from snake - that serve as novel, potent, and highly selective agonists for TRPV1 and ASIC1 channels, respectively. In each case, these toxins enabled elucidation of the activated, fully open state of the channel at atomic resolution, providing unprecedented insights into structural mechanisms underlying channel gating and modulation. This proposal builds on our success and expertise in toxin discovery and characterization, with the goal of expanding the repertoire of pharmacological agents with which to study known or novel somatosensory receptors. The first aim is focused on characterizing two spider toxins that we identified in a sensory neuron- based screening assay, and which target a specific voltage-gated sodium channel (Nav) subtype expressed by these cells. We propose to identify the Nav channel domain(s) that specifies toxin sensitivity and accounts for its subtype selectivity. Furthermore, we shall test toxin selectivity in vivo using mouse genetics, and identify the subpopulation of sensory neurons that mediate the excitatory and algogenic actions of these toxins in cellular and behavioral paradigms. The second aim is focused on characterizing two novel toxins - one from centipede and the other from snake - that we also identified by functional screening, and which activate primary afferent sensory neurons to elicit nocifensive responses in mice. We propose to identify the molecular targets of these toxins and determine the signaling mechanisms through which they activate sensory neurons of the pain pathway. These studies will uncover novel sensory transduction molecules and/or provide powerful new tools for determining how known transducers work to modulate nociceptor excitability. Information gleaned from this work will provide important pharmacologic leads and insights pertinent to the development of analgesic agents.
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会议论文
Natural products as probes of the pain pathway
Natural products as probes of the pain pathway
Natural products as probes of the pain pathway
ASIC Channels and Pain
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