Watanabe, M., and R. F. Gilmour. “Strategy for Control of Complex Low-Dimensional Dynamics in Cardiac Tissue”. Journal of Mathematical Biology, vol. 35, no. 1, 1996, pp. 73-87, https://doi.org/10.1007/s002850050043.

Genre

  • Journal Article
Contributors
Author: Watanabe, M.
Author: Gilmour, R. F., J.
Date Issued
1996
Abstract

Heart rate-dependent alterations in the duration of the electrically active state of cardiac cells, the action potential, are an important determinant of lethal heart rhythm disorders. The relationship between action potential duration and heart rate can be modelled as a nonlinear one-dimensional map. Iteration of the map over a range of physiologically relevant heart rates produces complex changes in action potential duration, including period doubling bifurcations, chaos and period doubling reversals. We present a computer algorithm that ensures, over the same range of heart rates, uniform state variable values (action potential durations) by application of small perturbing stimuli at appropriate intervals. The algorithm succeeds, even though the only parameter in the system (the heart rate) is immutable. Control of the dynamics is achieved by exploiting the inexcitability of the cardiac cells immediately after stimulation. This algorithm may have applications for the prevention of cardiac rhythm disturbances.

Note

Department of Physiology, Cornell University, Ithaca, New York 14853-6401, USA.

GERMANY

Springer Verlag : Berlin

Accession Number: 9002241. Language: English. Language Code: eng. Date Revised: 20071115. Date Created: 19970219. Date Completed: 19970219. Update Code: 20111122. Publication Type: Journal Article; Research Support, U.S. Gov't, P.H.S.. Journal ID: 7502105. Publication Model: Print. Cited Medium: Print. NLM ISO Abbr: J Math Biol Linking ISSN: 03036812. Subset: IM. Date of Electronic Publication: 19961101; ID: 9002241

Language

  • English

Subjects

  • Humans
  • Nonlinear Dynamics
  • Algorithms
  • Computer Simulation
  • Heart/physiopathology
  • Mathematics
  • Models, Cardiovascular*
  • Action Potentials
  • Heart Rate*
  • Heart/*physiology
  • Arrhythmias, Cardiac/*physiopathology
Page range
73-87
Host Title
Journal of Mathematical Biology
Host Abbreviated Title
J.Math.Biol.
Volume
35
Issue
1
ISSN
0303-6812

Department