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Ultrastructure of dragonfly wing veins: composite structure of fibrous material supplemented by resilin

机译:蜻蜓翼静脉的超微结构:纤维材料的复合结构和弹性蛋白的补充

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摘要

Dragonflies count among the most skilful of the flying insects. Their exceptional aerodynamic performance has been the subject of various studies. Morphological and kinematic investigations have showed that dragonfly wings, though being rather stiff, are able to undergo passive deformation during flight, thereby improving the aerodynamic performance. Resilin, a rubber-like protein, has been suggested to be a key component in insect wing flexibility and deformation in response to aerodynamic loads, and has been reported in various arthropod locomotor systems. It has already been found in wing vein joints, connecting longitudinal veins to cross veins, and was shown to endow the dragonfly wing with chordwise flexibility, thereby most likely influencing the dragonfly’s flight performance. The present study revealed that resilin is not only present in wing vein joints, but also in the internal cuticle layers of veins in wings of Sympetrum vulgatum (SV) and Matrona basilaris basilaris (MBB). Combined with other structural features of wing veins, such as number and thickness of cuticle layers, material composition, and cross-sectional shape, resilin most probably has an effect on the vein′s material properties and the degree of elastic deformations. In order to elucidate the wing vein ultrastructure and the exact localisation of resilin in the internal layers of the vein cuticle, the approaches of bright-field light microscopy, wide-field fluorescence microscopy, confocal laser-scanning microscopy, scanning electron microscopy and transmission electron microscopy were combined. Wing veins were shown to consist of up to six different cuticle layers and a single row of underlying epidermal cells. In wing veins of MBB, the latter are densely packed with light-scattering spheres, previously shown to produce structural colours in the form of quasiordered arrays. Longitudinal and cross veins differ significantly in relative thickness of exo- and endocuticle, with cross veins showing a much thicker exocuticle. The presence of resilin in the unsclerotised endocuticle suggests its contribution to an increased energy storage and material flexibility, thus to the prevention of vein damage. This is especially important in the highly stressed longitudinal veins, which have much lower possibility to yield to applied loads with the aid of vein joints, as the cross veins do. These results may be relevant not only for biologists, but may also contribute to optimise the design of micro-air vehicles.
机译:蜻蜓算是飞行中最熟练的昆虫之一。它们出色的空气动力学性能已成为各种研究的主题。形态学和运动学研究表明,蜻蜓的机翼虽然相当坚硬,但在飞行过程中却能够进行被动变形,从而改善了空气动力学性能。 Resilin是一种类似橡胶的蛋白质,已被认为是响应空气动力负荷而昆虫翅膀柔韧性和变形的关键成分,并且已在各种节肢动物运动系统中得到报道。它已经在翼静脉接头中发现,将纵向静脉连接到交叉静脉,并被证明赋予蜻蜓翼以弦向弹性,从而很可能影响蜻蜓的飞行性能。本研究表明,瑞香素不仅存在于机翼静脉关节中,而且存在于Sympetrum vulgatum(SV)和Matrona basilaris basilaris(MBB)的机翼的静脉内表皮层中。结合翼脉的其他结构特征,例如表皮层的数量和厚度,材料成分和横截面形状,弹性蛋白最有可能对静脉的材料特性和弹性变形程度产生影响。为了阐明翼状静脉的超微结构和弹性蛋白在静脉角质层内层的精确定位,采用了明场光学显微镜,宽视野荧光显微镜,共聚焦激光扫描显微镜,扫描电子显微镜和透射电子的方法。显微镜相结合。已显示翼状静脉由多达六个不同的表皮层和一排底层表皮细胞组成。在MBB的翼脉中,后者被光散射球密集地包裹着,先前显示它们会产生准序阵列形式的结构色。纵向和交叉静脉在表皮和表皮的相对厚度上有显着差异,其中交叉静脉显示出更厚的表皮。未硬化的内胚层中存在弹性蛋白表明其对增加能量存储和材料柔韧性的贡献,从而有助于预防静脉损伤。这在高度受力的纵向静脉中尤为重要,纵向静脉与跨静脉一样,借助静脉关节屈服于施加的载荷的可能性要低得多。这些结果可能不仅与生物学家有关,而且可能有助于优化微型航空器的设计。

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