English

Power Law Rheology of Folded Protein Hydrogels

Soft Condensed Matter 2025-12-01 v1

Abstract

Folded protein hydrogels are prime candidates as tuneable biomaterials but it is unclear to what extent their mechanical properties have mesoscopic, as opposed to molecular origins. To address this, we probe hydrogels of the muscle-derived protein I275I27_5, using a multimodal rheology approach. Across multiple protocols, the hydrogels consistently exhibit power-law viscoelasticity in the linear viscoelastic regime with an exponent β=0.03\beta = 0.03, suggesting a dense fractal meso-structure, with predicted fractal dimension df=2.48d_f = 2.48. In the nonlinear viscoelastic regime, the hydrogel undergoes stiffening and energy dissipation, indicating simultaneous alignment and unfolding of the folded proteins. Remarkably, this behaviour is highly reversible, as the value of β\beta, dfd_f and the viscoelastic moduli return to their equilibrium value, even after multiple cycles of deformation. This highlights a previously unrevealed diversity of viscoelastic properties that originate on the mesoscopic scale. These considerations are likely to be key to controlling the viscoelasticity of folded protein hydrogels.

Keywords

Cite

@article{arxiv.2207.13348,
  title  = {Power Law Rheology of Folded Protein Hydrogels},
  author = {Anders Aufderhorst-Roberts and Sophie Cussons and David J. Brockwell and Lorna Dougan},
  journal= {arXiv preprint arXiv:2207.13348},
  year   = {2025}
}