Title of article :
Interstitial growth and remodeling of biological tissues: Tissue composition as state variables
Author/Authors :
Myers، نويسنده , , Kristin and Ateshian، نويسنده , , Gerard A.، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2014
Pages :
13
From page :
544
To page :
556
Abstract :
Growth and remodeling of biological tissues involves mass exchanges between soluble building blocks in the tissueʹs interstitial fluid and the various constituents of cells and the extracellular matrix. As the content of these various constituents evolves with growth, associated material properties, such as the elastic modulus of the extracellular matrix, may similarly evolve. Therefore, growth theories may be formulated by accounting for the evolution of tissue composition over time in response to various biological and mechanical triggers. This approach has been the foundation of classical bone remodeling theories that successfully describe Wolffʹs law by establishing a dependence between Youngʹs modulus and bone apparent density and by formulating a constitutive relation between bone mass supply and the state of strain. The goal of this study is to demonstrate that adding tissue composition as state variables in the constitutive relations governing the stress–strain response and the mass supply represents a very general and straightforward method to model interstitial growth and remodeling in a wide variety of biological tissues. The foundation for this approach is rooted in the framework of mixture theory, which models the tissue as a mixture of multiple solid and fluid constituents. A further generalization is to allow each solid constituent in a constrained solid mixture to have its own reference (stress-free) configuration. Several illustrations are provided, ranging from bone remodeling to cartilage tissue engineering and cervical remodeling during pregnancy.
Keywords :
Mixture theory , Tissue engineering , Tissue remodeling , Growth mechanics
Journal title :
Journal of the Mechanical Behavior of Biomedical Materials
Serial Year :
2014
Journal title :
Journal of the Mechanical Behavior of Biomedical Materials
Record number :
1406300
Link To Document :
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