Literature DB >> 22254342

A finite element approach for modeling micro-structural discontinuities in the heart.

Caroline Mendonca Costa Costa1, Fernando O Campos, Anton J Prassl, Rodrigo Weber dos Santos, Damián Sánchez-Quintana, Ernst Hofer, Gernot Plank.   

Abstract

The presence of connective tissue as well as interstitial clefts forms a natural barrier to the electrical propagation in the heart. At a microscopic scale, such uncoupling structures change the pattern of the electrical conduction from uniform towards complex and may play a role in the genesis of cardiac arrhythmias. The anatomical diversity of conduction structures and their topology at a microscopic size scale is overwhelming for experimental techniques. Mathematical models have been often employed to study the behavior of the electrical propagation at a sub-cellular level. However, very fine and computationally expensive meshes are required to capture all microscopic details found in the cardiac tissue. In this work, we present a numerical technique based on the finite element method which allows to reproduce the effects of microscopic conduction barriers caused by the presence of uncoupling structures without actually resolving these structures in a high resolution mesh, thereby reducing the computational costs significantly.

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Year:  2011        PMID: 22254342      PMCID: PMC3971572          DOI: 10.1109/IEMBS.2011.6090059

Source DB:  PubMed          Journal:  Annu Int Conf IEEE Eng Med Biol Soc        ISSN: 2375-7477


  8 in total

1.  Cardiac microstructure: implications for electrical propagation and defibrillation in the heart.

Authors:  Darren A Hooks; Karl A Tomlinson; Scott G Marsden; Ian J LeGrice; Bruce H Smaill; Andrew J Pullan; Peter J Hunter
Journal:  Circ Res       Date:  2002-08-23       Impact factor: 17.367

2.  Computational tools for modeling electrical activity in cardiac tissue.

Authors:  Edward J Vigmond; Matt Hughes; G Plank; L Joshua Leon
Journal:  J Electrocardiol       Date:  2003       Impact factor: 1.438

3.  A 2D-computer model of atrial tissue based on histographs describes the electro-anatomical impact of microstructure on endocardiac potentials and electric near-fields.

Authors:  Fernando O Campos; Thomas Wiener; Anton J Prassl; Helmut Ahammer; Gernot Plank; Rodrigo Weber Dos Santos; Damián Sánchez-Quintana; Ernst Hofer
Journal:  Annu Int Conf IEEE Eng Med Biol Soc       Date:  2010

4.  A model of electrical conduction in cardiac tissue including fibroblasts.

Authors:  Frank B Sachse; A P Moreno; G Seemann; J A Abildskov
Journal:  Ann Biomed Eng       Date:  2009-03-13       Impact factor: 3.934

5.  Slow conduction in cardiac tissue, II: effects of branching tissue geometry.

Authors:  J P Kucera; A G Kléber; S Rohr
Journal:  Circ Res       Date:  1998-10-19       Impact factor: 17.367

6.  Revised formulation of the Hodgkin-Huxley representation of the sodium current in cardiac cells.

Authors:  J P Drouhard; F A Roberge
Journal:  Comput Biomed Res       Date:  1987-08

7.  The discontinuous nature of electrical propagation in cardiac muscle. Consideration of a quantitative model incorporating the membrane ionic properties and structural complexities. The ALZA distinguished lecture.

Authors:  M S Spach
Journal:  Ann Biomed Eng       Date:  1983       Impact factor: 3.934

8.  Generation of histo-anatomically representative models of the individual heart: tools and application.

Authors:  Gernot Plank; Rebecca A B Burton; Patrick Hales; Martin Bishop; Tahir Mansoori; Miguel O Bernabeu; Alan Garny; Anton J Prassl; Christian Bollensdorff; Fleur Mason; Fahd Mahmood; Blanca Rodriguez; Vicente Grau; Jürgen E Schneider; David Gavaghan; Peter Kohl
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2009-06-13       Impact factor: 4.226

  8 in total
  4 in total

1.  Modeling dynamics in diseased cardiac tissue: Impact of model choice.

Authors:  Tanmay A Gokhale; Eli Medvescek; Craig S Henriquez
Journal:  Chaos       Date:  2017-09       Impact factor: 3.642

2.  Mechanistic inquiry into the role of tissue remodeling in fibrotic lesions in human atrial fibrillation.

Authors:  Kathleen S McDowell; Fijoy Vadakkumpadan; Robert Blake; Joshua Blauer; Gernot Plank; Rob S Macleod; Natalia A Trayanova
Journal:  Biophys J       Date:  2013-06-18       Impact factor: 4.033

3.  Methodology for patient-specific modeling of atrial fibrosis as a substrate for atrial fibrillation.

Authors:  Kathleen S McDowell; Fijoy Vadakkumpadan; Robert Blake; Joshua Blauer; Gernot Plank; Rob S MacLeod; Natalia A Trayanova
Journal:  J Electrocardiol       Date:  2012-09-19       Impact factor: 1.438

4.  An efficient finite element approach for modeling fibrotic clefts in the heart.

Authors:  Caroline Mendonca Costa; Fernando O Campos; Anton J Prassl; Rodrigo Weber dos Santos; Damián Sánchez-Quintana; Helmut Ahammer; Ernst Hofer; Gernot Plank
Journal:  IEEE Trans Biomed Eng       Date:  2014-03       Impact factor: 4.538

  4 in total

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