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Mechanical modeling of mechanosensitive insect strain sensors as a tool to investigate exoskeletal interfaces.

Gesa F DingesWilliam P ZyhowskiAnastasia LucciJordan FriendNicholas Stephen Szczecinski
Published in: Bioinspiration & biomimetics (2024)
During walking, sensory information is measured and monitored by sensory organs that can be found on and within various limb segments. Strain can be monitored by insect load sensors, campaniform sensilla (CS), which have components embedded within the exoskeleton. CS vary in eccentricity, size, and orientation, which can affect their sensitivity to specific strains. Directly investigating the mechanical interfaces that these sensors utilize to encode changes in load bears various obstacles, such as modelling of viscoelastic properties. To circumvent the difficulties of modelling and performing biological experiments in small insects, we developed 3-dimensional printed resin models based on high-resolution imaging of CS. Through the utilization of strain gauges and a motorized tensile tester, physiologically plausible strain can be mimicked while investigating the compression and tension forces that CS experience; here, this was performed for a field of femoral CS in Drosophila melanogaster. Different loading scenarios differentially affected CS compression and the likely neuronal activity of these sensors and elucidate population coding of stresses acting on the cuticle.
Keyphrases
  • high resolution
  • low cost
  • drosophila melanogaster
  • escherichia coli
  • healthcare
  • climate change
  • mass spectrometry
  • aedes aegypti
  • zika virus
  • photodynamic therapy
  • cerebral ischemia
  • high speed