A Model for Stress-Induced Growth in the Developing Heart
- 1 August 1995
- journal article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 117 (3) , 343-349
- https://doi.org/10.1115/1.2794190
Abstract
Mechanical loads affect growth and morphogenesis in the developing heart. Using a theoretical model, we studied stress-modulated growth in the embryonic chick ventricle during stages 21–29 (4–6 days of a 21-day incubation period). The model is a thick-walled, compressible, pseudoelastic cylinder, with finite volumetric growth included by letting the rate of change of the local zero-stress configuration depend linearly on the Cauchy stresses. After investigating the fundamental behavior of the model, we used it to study global and local growth in the primitive ventricle due to normal and abnormal cavity pressures. With end-diastolic pressure taken as the growth-modulating stimulus, correlating theoretical and available experimental results yielded the coefficients of the growth law, which was assumed to be independent of time and loading conditions. For both normal and elevated pressures, the predicted changes in radius and wall volume during development were similar to experimental measurements. In addition, the residual stress generated by differential growth agreed with experimental data. These results suggest that wall stress may be a biomechanical factor that regulates growth in the embryonic heart.Keywords
This publication has 24 references indexed in Scilit:
- Biomechanics: Mechanical Properties of Living Tissues, 2nd ed.Journal of Applied Mechanics, 1994
- A Nonliner Poroelastic Model for the Trabecular Embryonic HeartJournal of Biomechanical Engineering, 1994
- Stress-dependent finite growth in soft elastic tissuesPublished by Elsevier ,1994
- Mechanical effects of looping in the embryonic chick heartJournal of Biomechanics, 1994
- Relationship Between Hypertension, Hypertrophy, and Opening Angle of Zero-Stress State of Arteries Following Aortic ConstrictionJournal of Biomechanical Engineering, 1989
- The role of external tensions in differentiation of Xenopus laevis embryonic tissuesCell Differentiation and Development, 1988
- Analytical description of growthJournal of Theoretical Biology, 1982
- Growth as A Finite Displacement FieldPublished by Springer Nature ,1981
- Surface bone remodeling induced by a medullary pinJournal of Biomechanics, 1979
- The influences of mechanical loads on the form of a growing elastic bodyJournal of Biomechanics, 1968