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    The biomechanical dilemma of phasmid eggs – how do stick insects hatch?
    (The Company of Biologists, 2025-09)
    Saltin, Brian D.
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    During their development, phasmid eggs with their long developmental periods face numerous biotic and abiotic challenges. These insect eggs are unique for their thick egg capsule and a specialised escape structure called the operculum/lid. This operculum needs to be easy to open from the inside, yet must not be a ‘weak spot’ for potential predators. One possible solution to this biomechanical dilemma could be a change in the operculum's mechanical properties over time. To investigate this hypothesis, we analysed the effect of age and storage conditions on the biomechanical properties of the egg and the operculum. We also performed high-resolution X-ray microscopy (XRM) and synchrotron studies to analyse the ultrastructure of the eggshell and operculum. Our results show that the eggs of Carausius morosus were able to resist a compressive force of up to 2 N. During maturation, the force required to open the operculum was significantly reduced from 0.14 N to 0.09 N. The properties of the eggshell itself, however, were not affected by humidity and did not change during maturation. Interestingly, the egg properties were affected by the mother's age. Our results thus indicate that the operculum is not a primary fracture site for externally applied stress; however, structural changes in the operculum during the developmental process of the embryo facilitate the hatching process.
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      52
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    Item-typ:Veröffentlichung,
    Insect wing damage: causes, consequences and compensatory mechanisms
    (Company of Biologists, 2020) ; ;
    The evolution of wings has played a key role in the success of insect species, allowing them to diversify to fill many niches. Insect wings are complex multifunctional structures, which not only have to withstand aerodynamic forces but also need to resist excessive stresses caused by accidental collisions. This Commentary provides a summary of the literature on damage-reducing morphological adaptations in wings, covering natural causes of wing collisions, their impact on the structural integrity of wings and associated consequences for both insect flight performance and life expectancy. Data from the literature and our own observations suggest that insects have evolved strategies that (i) reduce the likelihood of wing damage and (ii) allow them to cope with damage when it occurs: damage-related fractures are minimized because wings evolved to be damage tolerant and, in the case of wing damage, insects compensate for the reduced aerodynamic efficiency with dedicated changes in flight kinematics.
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      138
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    What goes up must come down: biomechanical impact analysis of falling locusts
    Many insects are able to precisely control their jumping movements. Once in the air, the properties of the actual landing site, however, are almost impossible to predict. Falling insects thus have to cope with the situation at impact. In particular, for insects jumping to escape predators, a controlled landing movement appears to be a major evolutionary advantage. A quick recovery into an upright and stable body posture minimizes the time to prepare for the next escape jump. In this study, we used high-speed recordings to investigate the falling and in particular the impact behavior of Schistocerca gregaria locusts, a common model organism for studies on the biomechanics of jumping. Detailed impact analyses of free-falling locusts show that most insects typically crashed onto the substrate. Although free-falling locusts tended to spread their legs, they mostly fell onto the head and thorax first. The presence of wings did not significantly reduce impact speed; however, it did affect the orientation of the body at impact and significantly reduced the time to recover. Our results also show that alive warm locusts fell significantly faster than inactive or dead locusts. This indicates a possible tradeoff between active control versus reduced speed. Interestingly, alive insects also tended to perform a characteristic bending movement of the body at impact. This biomechanical adaptation might reduce the rebound and shorten the time to recover. The adhesive pads also play an important role in reducing the time to recover by allowing the insect to anchor itself to the substrate.
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