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Action and Composition of Assassin Bug Venom

Action and Composition of Assassin Bug Venom
刺客虫毒液的作用和成分
批准号:
9727532
负责人:
John Edwards
金额:
$3.75万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-09-01 至 1999-08-31

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中文摘要
翻译
IBN-9727532 PI:爱德华兹有些动物可以产生毒液,其中不仅包括慢作用的酶,而且还包括非常快的作用的神经毒素,这是一种分子化合物,对神经细胞的信号或传输特性有巨大的影响。这些化合物可用于捕获猎物,如某些蛇和蜘蛛,或用于防御,如某些昆虫。最近,人们发现一种名为刺客虫的昆虫的热变性唾液中残留着一种强大的快速神经毒性,刺客虫会将这种有毒的唾液喷向捕食性较大的昆虫,导致迅速瘫痪。这种毒性活性似乎来自非酶多肽。这项用于探索性研究的小额赠款是为了分离、纯化和鉴定神经活性成分,以便与已知的神经活性多肽进行比较,并通过对昆虫神经-肌肉分离的药理学研究来建立它们的作用模式。工作假设是,活性成分是作用于神经肌肉接头的多肽,或通过作用于特定通道或通过创造膜孔来起作用,通常使膜去极化。这项工作开辟了一个潜在的大的新研究领域,因为我们知道一些来自蜘蛛的神经毒素,一些来自黄蜂和蜜蜂的神经毒素,但几乎对其他昆虫神经毒素一无所知。这项工作在神经科学中的潜在影响很大,因为为数不多的几种已知的良好特征的毒素导致了关于神经细胞膜分子结构的特别有用的信息。这种新的毒液可能具有新的分子特性,而且容易收集的毒液的数量远远超过其他昆虫或蜘蛛毒素,这可能导致一种廉价的商业药理来源。这项工作在生态学上的影响也可能很大,因为它将打开关于昆虫毒液的分子进化以及昆虫防御策略的进化发展的问题。
英文摘要
IBN-9727532 PI: EDWARDS Some animals can produce venom that includes not only slowly acting enzymes, but very rapidly acting neurotoxins, which are molecular compounds that have drastic effects on the signalling or transmission properties of nerve cells. These compounds may be used for prey capture, as in some snakes and spiders, or for defense, as in some insects. Recently it has been discovered that a potent rapid neurotoxicity remains in heat-denatured saliva of an insect called the assassin bug, which squirts this venomous saliva at predatory larger insects, causing rapid paralysis. This toxic activity appears to be from non-enzymatic peptides. This Small Grant for Exploratory Research is to isolate, purify and identify neuroactive components for comparison with known neuroactive peptides, and to establish their mode of action using pharmacological studies on insect nerve-muscle proparations. The working hypothesis is that the active components are peptides that act at the neuromuscular junction, or act to generally depolarize membranes by acting on specific channels or by creating membrane pores. This work opens a potentially large new area of research, because we know about some neurotoxic venoms from spiders and some from wasps and bees, but virtually nothing about other insect neurotoxins. The potential impact of this work in neuroscience is high because the few well-characterized known toxins have led to particularly useful information about the molecular structure of nerve cell membranes. This new venom may have novel molecular properties, and the amounts of readily collectable venom are far greater than for other insect or spider toxins, which could lead to an inexpensive commercial source for pharmacology. The impact of this work in ecology is also likely to be high because it will open questions about molecular evolution of insect venoms as well as evolutionary development of insect defense strategies.
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