A two-compartment mechanochemical model of the roles of transforming growth factor-beta and tissue tension in dermal wound healing
Data(s) |
07/03/2011
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Resumo |
The repair of dermal tissue is a complex process of interconnected phenomena, where cellular, chemical and mechanical aspects all play a role, both in an autocrine and in a paracrine fashion. Recent experimental results have shown that transforming growth factor-beta (TGF-beta) and tissue mechanics play roles in regulating cell proliferation, differentiation and the production of extracellular materials. We have developed a 1D mathematical model that considers the interaction between the cellular, chemical and mechanical phenomena, allowing the combination of TGF-beta and tissue stress to inform the activation of fibroblasts to myofibroblasts. Additionally, our model incorporates the observed feature of residual stress by considering the changing zero-stress state in the formulation for effective strain. Using this model, we predict that the continued presence of TGF-beta in dermal wounds will produce contractures due to the persistence of myofibroblasts; in contrast, early elimination of TGF-beta significantly reduces the myofibroblast numbers resulting in an increase in wound size. Similar results were obtained by varying the rate at which fibroblasts differentiate to myofibroblasts and by changing the myofibroblast apoptotic rate. Taken together, the implication is that elevated levels of myofibroblasts is the key factor behind wounds healing with excessive contraction, suggesting that clinical strategies which aim to reduce the myofibroblast density may reduce the appearance of contractures. |
Formato |
application/pdf |
Identificador | |
Publicador |
Elsevier |
Relação |
http://eprints.qut.edu.au/39171/1/c39171.pdf DOI:10.1016/j.jtbi.2010.12.011 Murphy, Kelly E., Hall, Cameron L., McCue, Scott W., & McElwain, D.L. Sean (2011) A two-compartment mechanochemical model of the roles of transforming growth factor-beta and tissue tension in dermal wound healing. Journal of Theoretical Biology, 272(1), pp. 145-159. |
Direitos |
Copyright 2011 Please consult the authors. |
Fonte |
Faculty of Science and Technology; Institute of Health and Biomedical Innovation; Mathematical Sciences |
Palavras-Chave | #010202 Biological Mathematics #biomechanics #morphoelasticity #zero stress states #mathematical biology #wound healing #myofibroblasts #TGF-beta |
Tipo |
Journal Article |