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A unified rheological model for cells and cellularised materials

A Bonfanti, J Fouchard, N Khalilgharibi, G Charras, View ORCID ProfileA Kabla
doi: https://doi.org/10.1101/543330
A Bonfanti
1Engineering Department, Cambridge University, UK
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J Fouchard
2London Centre for Nanotechnology, University College London, UK
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N Khalilgharibi
2London Centre for Nanotechnology, University College London, UK
3Centre for Computation, Mathematics and Physics in the Life Sciences and Experimental Biology (CoMPLEX), University College London, UK
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G Charras
2London Centre for Nanotechnology, University College London, UK
4Institute for the Physics of Living Systems, University College London, UK
5Department of Cell and Developmental Biology, University College London, UK
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A Kabla
1Engineering Department, Cambridge University, UK
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  • ORCID record for A Kabla
  • For correspondence: ajk61@cam.ac.uk
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Abstract

The mechanical response of single cells and tissues exhibits a broad distribution of time scales that gives often rise to a distinctive power-law regime. 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 can be derived from the model parameters, and together these explain different qualitative behaviours observed in creep after genetic and chemical treatments. 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 for diagnostic methods based on mechanical traits as well as more accurate computational models of tissues mechanics.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-ND 4.0 International license.
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Posted February 08, 2019.
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A unified rheological model for cells and cellularised materials
A Bonfanti, J Fouchard, N Khalilgharibi, G Charras, A Kabla
bioRxiv 543330; doi: https://doi.org/10.1101/543330
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A unified rheological model for cells and cellularised materials
A Bonfanti, J Fouchard, N Khalilgharibi, G Charras, A Kabla
bioRxiv 543330; doi: https://doi.org/10.1101/543330

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