Related Experiment Video
Updated: May 27, 2025

Synthetic Spider Silk Production on a Laboratory Scale
Published on: July 18, 2012
The Effect of the Loading-Unloading Cycles on the Tensile Behavior and Structures of Spider Tubular Gland Silk
Yi-Qin Hong1, Xin-Ru Zhang1, Li-Hua Wu2
1School of Life Sciences, Key Laboratory of Jiangxi Province for Biological Invasion and Biosecurity, Key Laboratory of Jiangxi Province for Functional Biology and Pollution Control in Red Soil Regions, Jinggangshan University, Ji'an, Jiangxi Province 343009, China.
Abstract:
There exists a significant correlation between the microstructural evolution and the mechanical properties of fibers during repeated loading and unloading cycles. Nevertheless, the influence of deformation and the duration of intervals on the structural and tensile behavior of spider silk after repeated stretching at a given strain value has been rarely reported, with the exception of studies focusing on the major ampullate gland silk (Mas) of the spider. In order to investigate the effects of repeated stretching on the structural and mechanical behavior of spider tubular gland silk (Tus), the tensile properties and the changes in semiquantitative protein secondary structure of Argiope bruennichi Tus during loading-unloading cycles were characterized. The results indicate that the typical tensile behavior curves of Tus were irreversibly modified to resemble those of Mas, demonstrating a clear yield region accompanied by a necking phenomenon. The Tus displays remarkable characteristics of repeated stretching and mechanical memory, and it is capable of reproducing the tensile behavior of fibers subjected to one stretch, independent from its previous loading history. The above phenomenon may be caused by repeated stretching leading to the damage and reconstruction of protein structures, including an increase in α-helix content and the rearrangement of spider-silk proteins, enabling them to reproduce their mechanical behavior. These findings may provide valuable insights for the biomimetic design of novel fiber materials, such as the spider silk gut, through the artificial stretching of spider silk glands.
Related Concept Videos
Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity
Cable Subjected to a Distributed Load
Stress-Strain Diagram - Ductile Materials
Plastic Behavior
Residual Stresses in Bending
Hooke's Law

