Strain-enhanced stress relaxation impacts nonlinear elasticity in collagen gels.
Sungmin NamKenneth H HuManish J ButteOvijit ChaudhuriPublished in: Proceedings of the National Academy of Sciences of the United States of America (2016)
The extracellular matrix (ECM) is a complex assembly of structural proteins that provides physical support and biochemical signaling to cells in tissues. The mechanical properties of the ECM have been found to play a key role in regulating cell behaviors such as differentiation and malignancy. Gels formed from ECM protein biopolymers such as collagen or fibrin are commonly used for 3D cell culture models of tissue. One of the most striking features of these gels is that they exhibit nonlinear elasticity, undergoing strain stiffening. However, these gels are also viscoelastic and exhibit stress relaxation, with the resistance of the gel to a deformation relaxing over time. Recent studies have suggested that cells sense and respond to both nonlinear elasticity and viscoelasticity of ECM, yet little is known about the connection between nonlinear elasticity and viscoelasticity. Here, we report that, as strain is increased, not only do biopolymer gels stiffen but they also exhibit faster stress relaxation, reducing the timescale over which elastic energy is dissipated. This effect is not universal to all biological gels and is mediated through weak cross-links. Mechanistically, computational modeling and atomic force microscopy (AFM) indicate that strain-enhanced stress relaxation of collagen gels arises from force-dependent unbinding of weak bonds between collagen fibers. The broader effect of strain-enhanced stress relaxation is to rapidly diminish strain stiffening over time. These results reveal the interplay between nonlinear elasticity and viscoelasticity in collagen gels, and highlight the complexity of the ECM mechanics that are likely sensed through cellular mechanotransduction.
Keyphrases
- extracellular matrix
- atomic force microscopy
- single molecule
- wound healing
- induced apoptosis
- stress induced
- high speed
- tissue engineering
- cell cycle arrest
- single cell
- gene expression
- stem cells
- signaling pathway
- endoplasmic reticulum stress
- cell death
- oxidative stress
- small molecule
- genome wide
- heat stress
- dna methylation
- bone marrow
- mass spectrometry
- pi k akt