Abstract
Significant advancements in imaging technology and the dramatic increase in computer power over the last few years broke the ground for the construction of anatomically realistic models of the heart at an unprecedented level of detail. To effectively make use of high-resolution imaging datasets for modeling purposes, the imaged objects have to be discretized. This procedure is trivial for structured grids. However, to develop generally applicable heart models, unstructured grids are much preferable. In this study, a novel image-based unstructured mesh generation technique is proposed. It uses the dual mesh of an octree applied directly to segmented 3-D image stacks. The method produces conformal, boundary-fitted, and hexahedra-dominant meshes. The algorithm operates fully automatically with no requirements for interactivity and generates accurate volume-preserving representations of arbitrarily complex geometries with smooth surfaces. The method is very well suited for cardiac electrophysiological simulations. In the myocardium, the algorithm minimizes variations in element size, whereas in the surrounding medium, the element size is grown larger with the distance to the myocardial surfaces to reduce the computational burden. The numerical feasibility of the approach is demonstrated by discretizing and solving the monodomain and bidomain equations on the generated grids for two preparations of high experimental relevance, a left ventricular wedge preparation, and a papillary muscle.
MeSH Terms
Algorithms
Computer Simulation
Electrophysiologic Techniques, Cardiac
Heart/anatomy & histology,physiology
Humans
Image Processing, Computer-Assisted/methods
Magnetic Resonance Imaging
Models, Cardiovascular
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Prassl Anton J
Institute for Computational Medicine, Johns Hopkins University, Baltimore, MD 21218 USA.
[email protected]
Kickinger Ferdinand
Ahammer Helmut
Grau Vicente
Schneider Jürgen E
Hofer Ernst
Vigmond Edward J
Trayanova Natalia A
Plank Gernot
References (29)
29 references, click to expand
-
Efficient simulation of three-dimensional anisotropic cardiac tissue using an adaptive mesh refinement method.
Chaos. 2003 Sep;13(3):853-65
PMID: 12946177
-
Electrical turbulence as a result of the critical curvature for propagation in cardiac tissue.
Chaos. 1998 Mar;8(1):116-126
PMID: 12779715
-
Computational tools for modeling electrical activity in cardiac tissue.
J Electrocardiol. 2003;36 Suppl:69-74
PMID: 14716595
-
Identification of cardiac malformations in mice lacking Ptdsr using a novel high-throughput magnetic resonance imaging technique.
BMC Dev Biol. 2004 Dec 22;4:16
PMID: 15615595
-
A comparison of monodomain and bidomain propagation models for the human heart.
Conf Proc IEEE Eng Med Biol Soc. 2006;2006:3895-8
PMID: 17945813
-
Electrical conductivity values used with the bidomain model of cardiac tissue.
IEEE Trans Biomed Eng. 1997 Apr;44(4):326-8
PMID: 9125816
-
Differences between left and right ventricular chamber geometry affect cardiac vulnerability to electric shocks.
Circ Res. 2005 Jul 22;97(2):168-75
PMID: 15976315
-
Algebraic multigrid preconditioner for the cardiac bidomain model.
IEEE Trans Biomed Eng. 2007 Apr;54(4):585-96
PMID: 17405366
-
Intramural virtual electrodes during defibrillation shocks in left ventricular wall assessed by optical mapping of membrane potential.
Circulation. 2002 Aug 20;106(8):1007-14
PMID: 12186808
-
A computer model of normal conduction in the human atria.
Circ Res. 2000 Sep 29;87(7):E25-36
PMID: 11009627
-
Interatrial electrical connections: the precise location and preferential conduction.
J Cardiovasc Electrophysiol. 2005 Oct;16(10):1077-86
PMID: 16191118
-
A finite volume method for modeling discontinuous electrical activation in cardiac tissue.
Ann Biomed Eng. 2005 May;33(5):590-602
PMID: 15981860
-
Defibrillation depends on conductivity fluctuations and the degree of disorganization in reentry patterns.
J Cardiovasc Electrophysiol. 2005 Feb;16(2):205-16
PMID: 15720461
-
The terminal crest: morphological features relevant to electrophysiology.
Heart. 2002 Oct;88(4):406-11
PMID: 12231604
-
A collocation--Galerkin finite element model of cardiac action potential propagation.
IEEE Trans Biomed Eng. 1994 Aug;41(8):743-57
PMID: 7927397
-
A space-time adaptive method for simulating complex cardiac dynamics.
Phys Rev Lett. 2000 Feb 7;84(6):1343-6
PMID: 11017514
-
Computational techniques for solving the bidomain equations in three dimensions.
IEEE Trans Biomed Eng. 2002 Nov;49(11):1260-9
PMID: 12450356
-
The dynamics of cardiac fibrillation.
Circulation. 2005 Aug 23;112(8):1232-40
PMID: 16116073
-
Role of papillary muscle in the generation and maintenance of reentry during ventricular tachycardia and fibrillation in isolated swine right ventricle.
Circulation. 1999 Sep 28;100(13):1450-9
PMID: 10500048
-
Construction of a computer model to investigate sawtooth effects in the Purkinje system.
IEEE Trans Biomed Eng. 2007 Mar;54(3):389-99
PMID: 17355050
-
Three-dimensional analysis of regional cardiac function: a model of rabbit ventricular anatomy.
Prog Biophys Mol Biol. 1998;69(2-3):157-83
PMID: 9785937
-
A rabbit ventricular action potential model replicating cardiac dynamics at rapid heart rates.
Biophys J. 2008 Jan 15;94(2):392-410
PMID: 18160660
-
Computer simulations of three-dimensional propagation in ventricular myocardium. Effects of intramural fiber rotation and inhomogeneous conductivity on epicardial activation.
Circ Res. 1993 Apr;72(4):744-56
PMID: 8443866
-
The architecture of the left lateral atrial wall: a particular anatomic region with implications for ablation of atrial fibrillation.
Eur Heart J. 2008 Feb;29(3):356-62
PMID: 18245120
-
Organization of ventricular fibrillation in the human heart.
Circ Res. 2007 Jun 22;100(12):e87-101
PMID: 17540975
-
Electrical resistances of interstitial and microvascular space as determinants of the extracellular electrical field and velocity of propagation in ventricular myocardium.
Circulation. 1995 Aug 1;92(3):587-94
PMID: 7634473
-
Measuring activation patterns of the heart at a microscopic size scale with thin-film sensors.
Am J Physiol. 1994 May;266(5 Pt 2):H2136-45
PMID: 8203613
-
Solvers for the cardiac bidomain equations.
Prog Biophys Mol Biol. 2008 Jan-Apr;96(1-3):3-18
PMID: 17900668
-
Three-dimensional models of individual cardiac histoanatomy: tools and challenges.
Ann N Y Acad Sci. 2006 Oct;1080:301-19
PMID: 17132791