Krogh-Madsen, Trine, et al. “Off-Site Control of Repolarization Alternans in Cardiac Fibers”. Physical Review. E, Statistical, Nonlinear, and Soft Matter Physics, vol. 81, no. 1, 2010, p. 011915, https://doi.org/10.1103/physreve.81.011915.

Genre

  • Journal Article
Contributors
Author: Krogh-Madsen, Trine
Author: Jordan, Peter N.
Author: Riccio, Mark L.
Author: Gilmour, Robert F.,,Jr
Author: Christini, David J.
Author: Karma, Alain
Date Issued
2010
Abstract

Repolarization alternans, a beat-to-beat alternation in action potential duration, has been putatively linked to the onset of cardiac reentry. Anti-alternans control strategies can eliminate alternans in individual cells by exploiting the rate dependence of action potential duration. The same approach, when applied to a common measuring/stimulating site at one end of a cardiac fiber, has been shown to have limited spatial efficacy. As a first step toward spatially distributed electrode control systems, we investigated 'off-site' control in canine Purkinje fibers, in which the recording and control sites are different. We found experimentally that alternans can be eliminated at, or very near, the recording site, and that varying the location of the recording site along the fiber causes the node (the location with no alternans) to move along the fiber in close proximity to the recording site. Theoretical predictions based on an amplitude equation B. Echebarria and A. Karma, Chaos 12, 923 (2002)] show that those findings follow directly from the wave nature of alternans: the most unstable mode of alternans along the fiber is a wave solution of a one-dimensional Helmholtz equation with a node position that only deviates slightly from the recording site by an amount dependent on electrotonic coupling. Computer simulations using a Purkinje fiber model confirm these theoretical and experimental results. Although off-site alternans control does not suppress alternans along the entire fiber, our results indicate that placing the node away from the stimulus site reduces alternans amplitude along the fiber, and may therefore have implications for antiarrhythmic strategies based on alternans termination.

Note

Greenberg Division of Cardiology, Department of Medicine, Weill Cornell Medical College, New York, New York 10021, USA. trk2002@med.cornell.edu

United States

Published by the American Physical Society through the American Institute of Physics : Melville, NY

Accession Number: 20365407. Language: English. Language Code: eng. Date Revised: 20120320. Date Created: 20100406. Date Completed: 20100706. Update Code: 20120321. Publication Type: In Vitro; Journal Article; Research Support, N.I.H., Extramural; Research Support, Non-U.S. Gov't; Research Support, U.S. Gov't, Non-P.H.S.. Journal ID: 101136452. Publication Model: Print-Electronic. Cited Medium: Internet. NLM ISO Abbr: Phys Rev E Stat Nonlin Soft Matter Phys PubMed Central ID: PMC2933068 Linking ISSN: 15393755. Subset: IM. Date of Electronic Publication: 2010 Jan 25; ID: 20365407

Language

  • English

Subjects

  • animals
  • Membrane Potentials/physiology
  • Microelectrodes
  • Purkinje Fibers/*physiology
  • Male
  • Action Potentials/*physiology
  • Algorithms
  • Computer Simulation
  • Electric Stimulation
  • Models, Cardiovascular
  • Periodicity
  • Myocytes, Cardiac/*physiology
  • Dogs
  • Time Factors
  • Female
Rights
Contact Publisher
Page range
011915
Host Title
Physical Review. E, Statistical, Nonlinear, and Soft Matter Physics
Host Abbreviated Title
Phys Rev E Stat Nonlin Soft Matter Phys
Volume
81
Issue
1
ISSN
1550-2376

Department