Dynamic mechanical analysis reveals reversible thermal effects in insect tibial cuticle
Veröffentlichungsdatum
2026-07
Autoren
Zusammenfassung
The mechanical performance of insect cuticle arises from its composite structure of chitin fibres embedded in a protein-rich matrix. While chitin contributes to thermal resistance and structural integrity, the protein component is temperature-sensitive and modulates viscoelastic behaviour. Here, we investigated how thermal exposure affects the mechanical properties of tibial cuticle in Locusta migratoria, using dynamic mechanical analysis (DMA) across a temperature range (22–74 °C) and following prior heating to 60 °C or 70 °C.
Both storage and loss moduli decreased significantly with increasing temperature by approx. 64 %, respectively 42 %, consistent with partially reversible thermal softening. After re-cooling, the loss modulus increased again to control levels, whereas the storage modulus remained significantly reduced. Tan δ increased significantly with increasing temperature by approx. 31 % and remained higher in pre-heated samples, reflecting a shift toward more compliant and dissipative behaviour. No significant differences were detected between the 60 °C and 70 °C treatments.
These results suggest that thermal exposure induces reversible changes in matrix protein mobility and non-covalent interactions, affecting stiffness more strongly than damping. The cuticle thus exhibits partial recovery of mechanical function after heating, which may reflect an adaptive response to transient thermal stress.
Both storage and loss moduli decreased significantly with increasing temperature by approx. 64 %, respectively 42 %, consistent with partially reversible thermal softening. After re-cooling, the loss modulus increased again to control levels, whereas the storage modulus remained significantly reduced. Tan δ increased significantly with increasing temperature by approx. 31 % and remained higher in pre-heated samples, reflecting a shift toward more compliant and dissipative behaviour. No significant differences were detected between the 60 °C and 70 °C treatments.
These results suggest that thermal exposure induces reversible changes in matrix protein mobility and non-covalent interactions, affecting stiffness more strongly than damping. The cuticle thus exhibits partial recovery of mechanical function after heating, which may reflect an adaptive response to transient thermal stress.
Schlagwörter
Insect cuticle
;
Dynamic mechanical analysis
;
Viscoelasticity
;
Thermal response
;
Storage modulus
;
Damping behaviour
;
Locusta migratoria
Verlag
Elsevier
Institution
Dokumenttyp
Wissenschaftlicher Artikel
Zeitschrift/Sammelwerk
ISSN
1751-6161
Band
179
Sprache
Englisch
