Journal of Biomechanics
Volume 43, Issue 9 , Pages 1745-1753 , 18 June 2010

Influence of left-ventricular shape on passive filling properties and end-diastolic fiber stress and strain

,Accepted 14 February 2010.

References 

  1. Anderson RH, Smerup M, Sanchez-Quintana D, Loukas M, Lunkenheimer PP. The three-dimensional arrangement of the myocytes in the ventricular walls. Clinical Anatomy. 2009;22(1):64–76
  2. Bovendeerd PHM, Arts T, Huyghe JM, van Campen DH, Reneman RS. Dependence of local left ventricular wall mechanics on myocardial fiber orientation: a model study. Journal of Biomechanics. 1992;25(10):1129–1140
  3. Claus, P., Choi, H.F., D’hooge, J., Rademakers, F.E., 2008. On the calculation of principle curvatures of the left-ventricular surfaces. In: Proceedings of the 30th Annual International Conference of the IEEE Engineering in Medicine and Biology Society. Vancouver Convention & Exhibition Centre, Vancouver.
  4. Costa KD, Hunter PJ, Wayne JS, Waldman LK, Guccione JM, McCulloch AD. A three-dimensional finite element method for large elastic deformations of ventricular myocardium: II—Prolate spheroidal coordinates. Journal of Biomechanical Engineering. 1996;118(4):464–472
  5. Ennis DB, Nguyen TC, Riboh JC, Wigström L, Harrington KB, Daughters GT, et al. Myofiber angle distributions in the ovine left ventricle do not conform to computationally optimized predictions. Journal of Biomechanics. 2008;41(15):3219–3224
  6. Guccione JM, McCulloch AD, Waldman LK. Passive material properties of intact ventricular myocardium determined from a cylindrical model. Journal of Biomechanical Engineering. 1991;113(1):42–55
  7. Guccione JM, Costa KD, McCulloch AD. Finite element stress analysis of left ventricular mechanics in the beating dog heart. Journal of Biomechanics. 1995;28(10):1167–1177
  8. Heroux MA, Bartlett RA, Howle VE, Hoekstra RJ, Hu JJ, Kolda TG, et al. An overview of the Trilinos project. ACM Transactions on Mathematical Software. 2005;31(3):397–423
  9. Holzapfel GA. Nonlinear Solid Mechanics: A Continuum Approach for Engineering. Chichester: John Wiley & Sons; 2000;
  10. Lang RM, Bierig M, Devereux RB, Flachskampf FA, Foster E, Pellikka PA, et al. Recommendations for chamber quantification: a report from the American society of echocardiography's guidelines and standards committee and the chamber quantification writing group, developed in conjunction with the European association of echocardiography, a branch of the European society of cardiology. Journal of the American Society of Echocardiography. 2005;18(12):1440–1463
  11. McGraw KO, Wong SP. Forming inferences about some intraclass correlation coefficients. Psychological Methods. 1996;1(1):30–46
  12. Muiesan ML, Salvetti M, Monteduro C, Rizzoni D, Corbellini C, Castellano M, et al. Changes in midwall systolic performance and cardiac hypertrophy reduction in hypertensive patients. Journal of Hypertension. 2000;18(11):1651–1656
  13. Okamoto RJ, Moulton MJ, Peterson SJ, Li D, Pasque MK, Guccione JM. Epicardial suction: a new approach to mechanical testing of the passive ventricular wall. Journal of Biomechanical Engineering. 2000;122(5):479–487
  14. Opie LH, Commerford PJ, Gersh BJ, Pfeffer MA. Controversies in ventricular remodelling. Lancet. 2006;367(9507):356–367
  15. Otto CM, Bonow RO. Valvular heart disease. In:  Libby P,  Bonow RO,  Mann DL,  Zipes DP,  Braunwald E editor. Braunwald's Heart Disease. eighth ed.. Philadelphia: Saunders-Elsevier; 2008;p. 1625–1712
  16. Rijcken J, Bovendeerd PHM, Schoofs AJG, van Campen DH, Arts T. Optimization of cardiac fiber orientation for homogeneous fiber strain at beginning of ejection. Journal of Biomechanics. 1997;30(10):1041–1049
  17. Shiels HA, White E. The Frank–Starling mechanism in vertebrate cardiac myocytes. Journal of Experimental Biology. 2008;211(13):2005–2013
  18. Shrout PE, Fleiss JL. Intraclass correlations: uses in assessing rater reliability. Psychological Bulletin. 1979;86(2):420–428
  19. Stevens C, Remme E, LeGrice I, Hunter P. Ventricular mechanics in diastole: material parameter sensitivity. Journal of Biomechanics. 2003;36(5):737–748
  20. Streeter DD, Hanna WT. Engineering mechanics for successive states in canine left ventricular myocardium. I. Cavity and wall geometry. Circulation Research. 1973;33(6):639–655
  21. Vendelin M, Bovendeerd PHM, Engelbrecht J, Arts T. Optimizing ventricular fibers: uniform strain or stress, but not ATP consumption, leads to high efficiency. American Journal of Physiology—Heart and Circulatory Physiology. 2002;283(3):H1072–H1081
  22. Vetter FJ, McCulloch AD. Three-dimensional stress and strain in passive rabbit left ventricle: a model study. Annals of Biomedical Engineering. 2000;28(7):781–792
  23. Westerhof N, Boer C, Lamberts RR, Sipkema P. Cross-talk between cardiac muscle and coronary vasculature. Physiological Reviews. 2006;86(4):1263–1308
  24. Zabalgoitia M, Rahman SN, Haley WE, Yarows S, Krause L, Anderson LC, et al. Effect of regression of left ventricular hypertrophy from systemic hypertension on systolic function assessed by midwall shortening (HOT echocardiographic study). The American Journal of Cardiology. 2001;88(5):521–525
  25. Zienkiewicz OC, Taylor RL, Zhu JZ. The Finite Element Method: Its Basis and Fundamentals. sixth ed.. Oxford: Elsevier (Butterworth-Heinemann); 2005;

PII: S0021-9290(10)00105-3

doi: 10.1016/j.jbiomech.2010.02.022

Journal of Biomechanics
Volume 43, Issue 9 , Pages 1745-1753 , 18 June 2010