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Insights into the molecular mechanisms underlying diversified wing venation among insects

机译:洞察昆虫中多种翅脉的潜在分子机制

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摘要

Insect wings are great resources for studying morphological diversities in nature as well as in fossil records. Among them, variation in wing venation is one of the most characteristic features of insect species. Venation is therefore, undeniably a key factor of species-specific functional traits of the wings; however, the mechanism underlying wing vein formation among insects largely remains unexplored. Our knowledge of the genetic basis of wing development is solely restricted to Drosophila melanogaster. A critical step in wing vein development in Drosophila is the activation of the decapentaplegic (Dpp)/bone morphogenetic protein (BMP) signalling pathway during pupal stages. A key mechanism is the directional transport of Dpp from the longitudinal veins into the posterior crossvein by BMP-binding proteins, resulting in redistribution of Dpp that reflects wing vein patterns. Recent works on the sawfly Athalia rosae, of the order Hymenoptera, also suggested that the Dpp transport system is required to specify fore- and hindwing vein patterns. Given that Dpp redistribution via transport is likely to be a key mechanism for establishing wing vein patterns, this raises the interesting possibility that distinct wing vein patterns are generated, based on where Dpp is transported. Experimental evidence in Drosophila suggests that the direction of Dpp transport is regulated by prepatterned positional information. These observations lead to the postulation that Dpp generates diversified insect wing vein patterns through species-specific positional information of its directional transport. Extension of these observations in some winged insects will provide further insights into the mechanisms underlying diversified wing venation among insects.
机译:昆虫翅膀是研究自然界和化石记录中形态多样性的重要资源。其中,翼脉的变化是昆虫物种最典型的特征之一。因此,毫无疑问,通风是机翼物种特定功能性状的关键因素。然而,昆虫中翼状静脉形成的机制在很大程度上尚待探索。我们对机翼发育的遗传基础的了解仅限于果蝇。果蝇翼静脉发育的关键步骤是p阶段的去中眼功能(Dpp)/骨形态发生蛋白(BMP)信号通路的激活。关键机制是Dpp通过BMP结合蛋白从纵向静脉定向转运到后交叉静脉中,从而导致Dpp重新分布,从而反映出机翼静脉的形态。膜翅目的锯齿蔷薇科的近期工作也表明,需要Dpp转运系统来确定前,后静脉的形态。鉴于通过运输进行Dpp的重新分配很可能是建立机翼静脉图案的关键机制,因此提出了一种有趣的可能性,即根据Dpp的运输位置产生不同的机翼静脉图案。果蝇中的实验证据表明,Dpp转运的方向受预先设定的位置信息调节。这些发现导致了推测,即Dpp通过其定向运输的特定于物种的位置信息来生成多样化的昆虫翅膀静脉图案。这些观察结果在一些有翼昆虫中的扩展将提供进一步的洞察力,以了解昆虫之间多样化的翼状通气的潜在机制。

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