PEER-REVIEWED PUBLICATION

2025

Protocol for quantifying the thickness and puncture resistance properties of solitary bee cocoons using Osmia lignaria as a model

A tensile test divider icon

Wasserman O, Wootton MR, et al.

STAR Protocols

Utah State University

RESEARCH SUMMARY
This protocol presents a standardized method for quantifying cocoon thickness and puncture resistance in solitary bees, using Osmia lignaria as a model species. The approach addresses a key gap in the biomechanical characterization of silk-based protective structures by enabling reproducible preparation, mounting, and testing of cocoon segments. Thickness measurements are used to normalize puncture resistance metrics, allowing meaningful comparison across specimens and between sexes, which exhibit natural variability in cocoon morphology. The protocol combines custom 3D-printed fixtures with mechanical testing to generate quantitative parameters including thickness, maximum puncture load, stiffness, and work to puncture. By detailing specimen preparation, directional puncture testing, and data analysis workflows, the study provides a transferable framework for investigating puncture resistance in cocoons of other solitary bee species and layered biological membranes more broadly.
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CELLSCALE INSTRUMENT USED

MicroTester

A CellScale MicroTester G2 was used to perform high-resolution thickness measurements of prepared Osmia lignaria cocoon segments prior to puncture testing. Cocoon specimens were mounted on custom 3D-printed tower fixtures and positioned in front of the MicroTester camera, where optical crosshairs were used to measure local thickness at multiple locations along each segment. This ultra-low-force, non-destructive measurement enabled accurate quantification of cocoon thickness without deforming the material, providing essential normalization parameters for subsequent puncture resistance analysis performed on a separate mechanical testing system.
AUTHORS

Oran Wasserman, Mallory R. Wootton, Spencer Fairbanks, Brianne E. Bell, Mary-Kate F. Williams, Justin A. Jones.

PUBLICATION DETAILS
JOURNAL

STAR Protocols

YEAR

2025

INSTITUTIONS

Utah State University

COUNTRIES

United States

INSTRUMENT USED

MicroTester

TESTING METHODS

Indentation TestingUltra Low Force Testing

RESEARCH APPLICATIONS

Membranes and Thin Films MechanicsPolymers and Elastomers Testing

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