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PMID: 20447409 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

A multiscale model for eccentric and concentric cardiac growth through sarcomerogenesis.

Journal of theoretical biology ·Vol. 265 ·No. 3 ·2010-08-07 ·Pages 433-42

Göktepe S, Abilez OJ, Parker KK, Kuhl E

Abstract

We present a novel computational model for maladaptive cardiac growth in which kinematic changes of the cardiac chambers are attributed to alterations in cytoskeletal architecture and in cellular morphology. We adopt the concept of finite volume growth characterized through the multiplicative decomposition of the deformation gradient into an elastic part and a growth part. The functional form of its growth tensor is correlated to sarcomerogenesis, the creation and deposition of new sarcomere units. In response to chronic volume-overload, an increased diastolic wall strain leads to the addition of sarcomeres in series, resulting in a relative increase in cardiomyocyte length, associated with eccentric hypertrophy and ventricular dilation. In response to chronic pressure-overload, an increased systolic wall stress leads to the addition of sacromeres in parallel, resulting in a relative increase in myocyte cross sectional area, associated with concentric hypertrophy and ventricular wall thickening. The continuum equations for both forms of maladaptive growth are discretized in space using a nonlinear finite element approach, and discretized in time using the implicit Euler backward scheme. We explore a generic bi-ventricular heart model in response to volume- and pressure-overload to demonstrate how local changes in cellular morphology translate into global alterations in cardiac form and function.

MeSH Terms
Biomechanical Phenomena Blood Pressure Cardiomegaly/physiopathology Cytoskeleton/ultrastructure Finite Element Analysis Heart/growth & development Heart Ventricles/physiopathology Hemodynamics Humans Models, Cardiovascular Sarcomeres/physiology Stress, Mechanical
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Göktepe Serdar
Department of Mechanical Engineering, Stanford University, 496 Lomita Mall, Stanford, CA 94305, USA. [email protected]
Abilez Oscar John
Parker Kevin Kit
Kuhl Ellen
Article Info
Journal
Journal of theoretical biology
Abbr.
J Theor Biol
ISSN
1095-8541
Published
2010-08-07
Epub
2010-00-04
Pages
433-42
Language
English
Region
England
NLM ID
0376342
Subset
IM
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