Projects per year
Abstract
Damage in soft biological tissues causes an inflammatory reaction that initiates a chain of events to repair the tissue. This work presents a continuum model and its in silico implementation that describe the cascade of mechanisms leading to tissue healing, coupling mechanical as well as chemo-biological processes. The mechanics is described by means of a Lagrangian nonlinear continuum mechanics framework and follows the homogenized constrained mixtures theory. Plastic-like damage, growth and remodeling as well as homeostasis are taken into account. The chemo-biological pathways account for two molecular and four cellular species, and are activated by damage of collagen molecules in fibers. To consider proliferation, differentiation, diffusion and chemotaxis of species, diffusion–advection–reaction equations are employed. To the best of authors’ knowledge, the proposed model combines for the first time such high number of chemo-mechano-biological mechanisms in a consistent continuum biomechanical framework. The resulting set of coupled differential equations describe balance of linear momentum, evolution of kinematic variables as well as mass balance equations. They are discretized in time according to a backward Euler finite difference scheme, and in space through a finite element Galerkin discretization. The features of the model are firstly demonstrated presenting the species dynamics and highlighting the influence of damage intensities on the growth outcome. In terms of a biaxial test, the chemo-mechano-biological coupling and the model's applicability to reproduce normal as well as pathological healing are shown. A last numerical example underlines the model's applicability to complex loading scenarios and inhomogeneous damage distributions. Concluding, the present work contributes towards comprehensive in silico models in biomechanics and mechanobiology.
| Original language | English |
|---|---|
| Article number | 106811 |
| Journal | Computers in biology and medicine |
| Volume | 158 |
| E-pub ahead of print | 22 Mar 2023 |
| DOIs | |
| Publication status | Published - May 2023 |
Keywords
- Damage-induced growth
- Homogenized constrained mixtures
- Inflammatory response
- Mechanobiology of healing
- Soft biological tissues
ASJC Scopus subject areas
- Computer Science Applications
- Health Informatics
Projects
- 2 Finished
-
SIIRI: Collaborative Research Centre-Transregio 298/1, sub-project B07: Simulation of biofilm growth and drug-induced degradation
Wriggers, P. (Principal Investigator)
1 Jul 2021 → 31 Dec 2025
Project: Research
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SIIRI: Collaborative Research Centre/Transregio 298/1: Safety Integrated and Infection Reactive Implants
Stiesch, M. (Principal Investigator) & Maier, H. J. (Co-Principal Investigator)
1 Jul 2021 → 31 Dec 2025
Project: Research
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