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The assassin bug Pristhesancus plagipennis produces two distinct venoms in separate gland lumens

机译:刺客虫Pristhesancus plagipennis在单独的腺腔中产生两种不同的毒液

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摘要

The assassin bug venom system plays diverse roles in prey capture, defence and extra-oral digestion, but it is poorly characterised, partly due to its anatomical complexity. Here we demonstrate that this complexity results from numerous adaptations that enable assassin bugs to modulate the composition of their venom in a context-dependent manner. Gland reconstructions from multimodal imaging reveal three distinct venom gland lumens: the anterior main gland (AMG); posterior main gland (PMG); and accessory gland (AG). Transcriptomic and proteomic experiments demonstrate that the AMG and PMG produce and accumulate distinct sets of venom proteins and peptides. PMG venom, which can be elicited by electrostimulation, potently paralyses and kills prey insects. In contrast, AMG venom elicited by harassment does not paralyse prey insects, suggesting a defensive role. Our data suggest that assassin bugs produce offensive and defensive venoms in anatomically distinct glands, an evolutionary adaptation that, to our knowledge, has not been described for any other venomous animal.
机译:刺客的臭虫毒液系统在猎物的捕获,防御和口外消化中起着不同的作用,但它的特征很差,部分原因是其解剖结构复杂。在这里,我们证明了这种复杂性是由多种改编产生的,这些改编使刺客虫能够以上下文相关的方式调节其毒液的成分。多模态成像的腺体重建揭示了三个不同的毒腺腔:前主腺(AMG);后主腺(PMG);和附属腺(AG)。转录组和蛋白质组学实验表明,AMG和PMG产生并积累了不同的毒液蛋白和肽组。 PMG毒液可通过电刺激引起,可有效地麻痹并杀死捕食性昆虫。相比之下,骚扰引起的AMG毒液不会使猎食昆虫麻痹,表明具有防御作用。我们的数据表明,刺客虫在解剖学上不同的腺体中产生进攻性和防守性毒液,据我们所知,进化适应性还没有被其他有毒动物描述。

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