Department of Functional Morphology and Biomechanics, Institute of Zoology, Kiel University, Am Botanischen Garten 9, 24118 Kiel, Germany.
Department of Functional Morphology and Biomechanics, Institute of Zoology, Kiel University, Am Botanischen Garten 9, 24118 Kiel, Germany.
J Insect Physiol. 2019 Aug-Sep;117:103914. doi: 10.1016/j.jinsphys.2019.103914. Epub 2019 Jul 16.
Moulting, especially in 'hemimetabolous' insects that emerge upside down, is a crucial moment in their live. Losing their attachment during this situation can be fatal for survival. We here studied the emergence of dragonfly adults, describe structures involved in larval attachment to the substrate, and biomechanically test the pull-off forces of exuviae to natural substrates. Confocal laser scanning microscopy and scanning electron microscopy were used to describe both morphology and material composition of the leg cuticle of Anax imperator larvae. The results show that the combination of morphological and behavioral adaptations provides reliable anchorage of exuviae to the substrates. We determined a safety factor of 14, and demonstrated that this staggered safety system experiencing several unlocking and relocking events withstand multiple disturbances before the entire exuvia is completely detaches. This furthers our understanding of interlocking and anchorage of insects in general and may allow for future applications.
蜕皮,特别是在“渐变态”昆虫中,这些昆虫会倒着蜕皮,这是它们生命中的一个关键时刻。在这种情况下失去附着点可能对生存是致命的。我们在这里研究了蜻蜓成虫的出壳过程,描述了幼虫附着在基质上的结构,并对蜕皮对自然基质的脱离力进行了生物力学测试。共聚焦激光扫描显微镜和扫描电子显微镜用于描述了 Anax imperator 幼虫的腿外骨骼的形态和材料组成。结果表明,形态和行为适应性的结合为蜕皮提供了可靠的附着点。我们确定了 14 的安全系数,并证明了这种交错的安全系统在整个蜕皮完全脱离之前,经历了多次解锁和重新锁定事件,可以承受多次干扰。这进一步加深了我们对昆虫的互锁和附着的理解,并且可能为未来的应用提供了依据。