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A unified rheological model for cells and cellularised materials
- Source :
- Royal Society Open Science, Vol 7, Iss 1 (2020), Royal Society Open Science
- Publication Year :
- 2020
- Publisher :
- The Royal Society, 2020.
-
Abstract
- The mechanical response of single cells and tissues exhibits a broad distribution of time-scales that often gives rise to a distinctive power-law rheology. Such complex behaviour cannot be easily captured by traditional rheological approaches, making material characterisation and predictive modelling very challenging. Here, we present a novel model combining conventional viscoelastic elements with fractional calculus that successfully captures the macroscopic relaxation response of epithelial monolayers. The parameters extracted from the fitting of the relaxation modulus allow prediction of the response of the same material to slow stretch and creep, indicating that the model captured intrinsic material properties. Two characteristic times, derived from the model parameters, delimit different regimes in the materials response. We compared the response of tissues with the behaviour of single cells as well as intra and extra-cellular components, and linked the power-law behaviour of the epithelium to the dynamics of the cell cortex. Such a unified model for the mechanical response of biological materials provides a novel and robust mathematical approach to consistently analyse experimental data and uncover similarities and differences in reported behaviour across experimental methods and research groups. It also sets the foundations for more accurate computational models of tissue mechanics.
- Subjects :
- Materials science
tissue rheology
fractional viscoelasticity
01 natural sciences
Viscoelasticity
cell rheology
03 medical and health sciences
Rheology
0103 physical sciences
lcsh:Science
010306 general physics
030304 developmental biology
Physics and Biophysics
0303 health sciences
Computational model
Multidisciplinary
Unified Model
Fractional calculus
Creep
Relaxation (physics)
lcsh:Q
Relaxation (approximation)
Material properties
Biological system
Research Article
Subjects
Details
- ISSN :
- 20545703
- Volume :
- 7
- Database :
- OpenAIRE
- Journal :
- Royal Society Open Science
- Accession number :
- edsair.doi.dedup.....321ee6e58bc436ba2257138ce362b6cd
- Full Text :
- https://doi.org/10.1098/rsos.190920