Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance
Odonata larvae are key predators in their habitats. They catch prey with a unique and highly efficient apparatus, the prehensile mask. The mandibles and maxillae, however, play the lead in handling and crushing the food. The material composition of the cuticle in the biomechanical system of the larv...
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doaj-0d621342ef004b559c7113857e0880aa2020-11-25T04:06:04ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-015610.1098/rsos.172117172117Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significanceSebastian BüsseStanislav N. GorbOdonata larvae are key predators in their habitats. They catch prey with a unique and highly efficient apparatus, the prehensile mask. The mandibles and maxillae, however, play the lead in handling and crushing the food. The material composition of the cuticle in the biomechanical system of the larval mouthparts has not been studied so far. We used confocal laser scanning microscopy (CLSM) to detect material gradients in the cuticle by differences in autofluorescence. Our results show variations of materials in different areas of the mouthparts: (i) resilin-dominated pads within the membranous transition between the labrum and the anteclypeus, which support mobility and might provide shock absorption, an adaptation against mechanical damage; (ii) high degrees of sclerotization in the incisivi of the mandibles, where high forces occur when crushing the prey's body wall. The interaction of the cuticle geometry, the material composition and the related musculature determine the complex concerted movements of the mouthparts. The material composition influences the strength, mobility and durability of the cuticular components of the mouthparts. Applying CLSM for extracting information about material composition and material properties of arthropod cuticles will considerably help improve finite-element modelling studies.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.172117zygopteraprehensile labial maskfeeding biomechanicsconfocal laser scanning microscopyfinite-element modelling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sebastian Büsse Stanislav N. Gorb |
spellingShingle |
Sebastian Büsse Stanislav N. Gorb Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance Royal Society Open Science zygoptera prehensile labial mask feeding biomechanics confocal laser scanning microscopy finite-element modelling |
author_facet |
Sebastian Büsse Stanislav N. Gorb |
author_sort |
Sebastian Büsse |
title |
Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance |
title_short |
Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance |
title_full |
Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance |
title_fullStr |
Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance |
title_full_unstemmed |
Material composition of the mouthpart cuticle in a damselfly larva (Insecta: Odonata) and its biomechanical significance |
title_sort |
material composition of the mouthpart cuticle in a damselfly larva (insecta: odonata) and its biomechanical significance |
publisher |
The Royal Society |
series |
Royal Society Open Science |
issn |
2054-5703 |
publishDate |
2018-01-01 |
description |
Odonata larvae are key predators in their habitats. They catch prey with a unique and highly efficient apparatus, the prehensile mask. The mandibles and maxillae, however, play the lead in handling and crushing the food. The material composition of the cuticle in the biomechanical system of the larval mouthparts has not been studied so far. We used confocal laser scanning microscopy (CLSM) to detect material gradients in the cuticle by differences in autofluorescence. Our results show variations of materials in different areas of the mouthparts: (i) resilin-dominated pads within the membranous transition between the labrum and the anteclypeus, which support mobility and might provide shock absorption, an adaptation against mechanical damage; (ii) high degrees of sclerotization in the incisivi of the mandibles, where high forces occur when crushing the prey's body wall. The interaction of the cuticle geometry, the material composition and the related musculature determine the complex concerted movements of the mouthparts. The material composition influences the strength, mobility and durability of the cuticular components of the mouthparts. Applying CLSM for extracting information about material composition and material properties of arthropod cuticles will considerably help improve finite-element modelling studies. |
topic |
zygoptera prehensile labial mask feeding biomechanics confocal laser scanning microscopy finite-element modelling |
url |
https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.172117 |
work_keys_str_mv |
AT sebastianbusse materialcompositionofthemouthpartcuticleinadamselflylarvainsectaodonataanditsbiomechanicalsignificance AT stanislavngorb materialcompositionofthemouthpartcuticleinadamselflylarvainsectaodonataanditsbiomechanicalsignificance |
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1724432649135587328 |