Use of topological charge to determine filament location and dynamics in a numerical model of scroll wave activity
- PMID: 12374332
- DOI: 10.1109/TBME.2002.803516
Use of topological charge to determine filament location and dynamics in a numerical model of scroll wave activity
Abstract
The unique time course of an excitable element in cardiac tissue can be represented as the phase of its trajectory in state space. A phase singularity is defined as a spatial point where the surrounding phase values changes by a total of 2 pi, thereby forming the organizing center for a reentrant excitatory wave, a phenomenon which occurs in cardiac fibrillation. In this paper, we describe a methodology to detect the singular filament in numeric simulations of three-dimensional (3-D) scroll waves by using the concept of topological charge. Here, we use simple two-variable models of cardiac activity to construct the state space, generate the phase field, and calculate the topological charge as a summation of 3-D convolution operations. We illustrate the usage of the algorithm on the basic dynamics of vortex ring filament behavior as well as the more complex spatiotemporal behavior observed in fibrillation. We also compare the motion of filament wavetips as determined by the phase field produced by two-variable state space and single-variable, time-delay embedded state space. Finally, we examine the state spaces produced by a more complex three-variable model. We conclude that the use of state-space analysis, along with the unique properties of topological charge, allows for a novel means of filament localization.
Similar articles
-
Filament behavior in a computational model of ventricular fibrillation in the canine heart.IEEE Trans Biomed Eng. 2004 Jan;51(1):28-34. doi: 10.1109/TBME.2003.820356. IEEE Trans Biomed Eng. 2004. PMID: 14723491
-
Negative filament tension in the Luo-Rudy model of cardiac tissue.Chaos. 2007 Mar;17(1):015102. doi: 10.1063/1.2430638. Chaos. 2007. PMID: 17411259
-
Vortex filament dynamics in computational models of ventricular fibrillation in the heart.Chaos. 2008 Dec;18(4):043127. doi: 10.1063/1.3043805. Chaos. 2008. PMID: 19123637
-
Molecular mechanisms and global dynamics of fibrillation: an integrative approach to the underlying basis of vortex-like reentry.J Theor Biol. 2004 Oct 21;230(4):475-87. doi: 10.1016/j.jtbi.2004.02.024. J Theor Biol. 2004. PMID: 15363670 Review.
-
Phase singularities and filaments: simplifying complexity in computational models of ventricular fibrillation.Prog Biophys Mol Biol. 2006 Jan-Apr;90(1-3):378-98. doi: 10.1016/j.pbiomolbio.2005.06.011. Epub 2005 Jul 25. Prog Biophys Mol Biol. 2006. PMID: 16098568 Review.
Cited by
-
The physics of heart rhythm disorders.Phys Rep. 2022 Sep 19;978:1-45. doi: 10.1016/j.physrep.2022.06.003. Epub 2022 Jul 6. Phys Rep. 2022. PMID: 36843637 Free PMC article.
-
In silico Assessment of Pharmacotherapy for Human Atrial Patho-Electrophysiology Associated With hERG-Linked Short QT Syndrome.Front Physiol. 2019 Jan 11;9:1888. doi: 10.3389/fphys.2018.01888. eCollection 2018. Front Physiol. 2019. PMID: 30687112 Free PMC article.
-
AF driver detection in pulmonary vein area by electropcardiographic imaging: Relation with a favorable outcome of pulmonary vein isolation.Front Physiol. 2023 Jan 30;14:1057700. doi: 10.3389/fphys.2023.1057700. eCollection 2023. Front Physiol. 2023. PMID: 36793415 Free PMC article.
-
Determinants of new wavefront locations in cholinergic atrial fibrillation.Europace. 2018 Nov 1;20(suppl_3):iii3-iii15. doi: 10.1093/europace/euy235. Europace. 2018. PMID: 30476057 Free PMC article.
-
Directed Networks as a Novel Way to Describe and Analyze Cardiac Excitation: Directed Graph Mapping.Front Physiol. 2019 Sep 10;10:1138. doi: 10.3389/fphys.2019.01138. eCollection 2019. Front Physiol. 2019. PMID: 31551814 Free PMC article.
Publication types
MeSH terms
Grants and funding
LinkOut - more resources
Full Text Sources
Other Literature Sources
Research Materials
Miscellaneous