Literature DB >> 8038399

Adaptation of cardiac structure by mechanical feedback in the environment of the cell: a model study.

T Arts1, F W Prinzen, L H Snoeckx, J M Rijcken, R S Reneman.   

Abstract

In the cardiac left ventricle during systole mechanical load of the myocardial fibers is distributed uniformly. A mechanism is proposed by which control of mechanical load is distributed over many individual control units acting in the environment of the cell. The mechanics of the equatorial region of the left ventricle was modeled by a thick-walled cylinder composed of 6-1500 shells of myocardial fiber material. In each shell a separate control unit was simulated. The direction of the cells was varied so that systolic fiber shortening approached a given optimum of 15%. End-diastolic sarcomere length was maintained at 2.1 microns. Regional early-systolic stretch and global contractility stimulated growth of cellular mass. If systolic shortening was more than normal the passive extracellular matrix stretched. The design of the load-controlling mechanism was derived from biological experiments showing that cellular processes are sensitive to mechanical deformation. After simulating a few hundred adaptation cycles, the macroscopic anatomical arrangement of helical pathways of the myocardial fibers formed automatically. If pump load of the ventricle was changed, wall thickness and cavity volume adapted physiologically. We propose that the cardiac anatomy may be defined and maintained by a multitude of control units for mechanical load, each acting in the cellular environment. Interestingly, feedback through fiber stress is not a compelling condition for such control.

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Year:  1994        PMID: 8038399      PMCID: PMC1275802          DOI: 10.1016/S0006-3495(94)80876-8

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  43 in total

1.  Residual strain in rat left ventricle.

Authors:  J H Omens; Y C Fung
Journal:  Circ Res       Date:  1990-01       Impact factor: 17.367

2.  Accelerated rates of ribosomal RNA synthesis during growth of contracting heart cells in culture.

Authors:  P J McDermott; L I Rothblum; S D Smith; H E Morgan
Journal:  J Biol Chem       Date:  1989-10-25       Impact factor: 5.157

3.  Dynamics of left ventricular wall and mitral valve mechanics--a model study.

Authors:  T Arts; R S Reneman
Journal:  J Biomech       Date:  1989       Impact factor: 2.712

4.  Protooncogene induction and reprogramming of cardiac gene expression produced by pressure overload.

Authors:  S Izumo; B Nadal-Ginard; V Mahdavi
Journal:  Proc Natl Acad Sci U S A       Date:  1988-01       Impact factor: 11.205

5.  A model of the mechanics of the left ventricle.

Authors:  T Arts; R S Reneman; P C Veenstra
Journal:  Ann Biomed Eng       Date:  1979       Impact factor: 3.934

6.  Time course of regression of left ventricular hypertrophy after aortic valve replacement.

Authors:  E S Monrad; O M Hess; T Murakami; H Nonogi; W J Corin; H P Krayenbuehl
Journal:  Circulation       Date:  1988-06       Impact factor: 29.690

7.  Collagen remodeling of the pressure-overloaded, hypertrophied nonhuman primate myocardium.

Authors:  K T Weber; J S Janicki; S G Shroff; R Pick; R M Chen; R I Bashey
Journal:  Circ Res       Date:  1988-04       Impact factor: 17.367

8.  Transmural myocardial deformation in the canine left ventricle. Normal in vivo three-dimensional finite strains.

Authors:  L K Waldman; Y C Fung; J W Covell
Journal:  Circ Res       Date:  1985-07       Impact factor: 17.367

9.  Left ventricular free wall and intraventricular pressure-sarcomere length distributions.

Authors:  A F Grimm; H L Lin; B R Grimm
Journal:  Am J Physiol       Date:  1980-07

10.  Load regulation of the properties of adult feline cardiocytes: growth induction by cellular deformation.

Authors:  D L Mann; R L Kent; G Cooper
Journal:  Circ Res       Date:  1989-06       Impact factor: 17.367

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  21 in total

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Journal:  Biophys J       Date:  2001-02       Impact factor: 4.033

Review 2.  The Cardiome Project. An integrated view of cardiac metabolism and regional mechanical function.

Authors:  J B Bassingthwaighte; H Qian; Z Li
Journal:  Adv Exp Med Biol       Date:  1999       Impact factor: 2.622

3.  Blood flows and metabolic components of the cardiome.

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Journal:  Prog Biophys Mol Biol       Date:  1998       Impact factor: 3.667

4.  DTI template-based estimation of cardiac fiber orientations from 3D ultrasound.

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Journal:  Med Phys       Date:  2015-06       Impact factor: 4.071

5.  Blood flow patterns underlie developmental heart defects.

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Journal:  Am J Physiol Heart Circ Physiol       Date:  2017-01-06       Impact factor: 4.733

6.  Extracting Cardiac Myofiber Orientations from High Frequency Ultrasound Images.

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Review 7.  Mathematical modeling of cardiac growth and remodeling.

Authors:  L C Lee; G S Kassab; J M Guccione
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8.  Surgical ventricular restoration: an operation to reverse remodeling - the basic science (part I).

Authors:  Ganesh Shanmugam; Imtiaz S Ali
Journal:  Curr Cardiol Rev       Date:  2009-11

9.  Three-wall segment (TriSeg) model describing mechanics and hemodynamics of ventricular interaction.

Authors:  Joost Lumens; Tammo Delhaas; Borut Kirn; Theo Arts
Journal:  Ann Biomed Eng       Date:  2009-08-29       Impact factor: 3.934

Review 10.  Clinical Applications of Patient-Specific Models: The Case for a Simple Approach.

Authors:  Jeffrey W Holmes; Joost Lumens
Journal:  J Cardiovasc Transl Res       Date:  2018-02-16       Impact factor: 4.132

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