Reduced intercellular coupling leads to paradoxical propagation across the Purkinje-ventricular junction and aberrant myocardial activation

Gregory E. Morley, Stephan B. Danik, Scott Bernstein, Yanjie Sun, Gregg Rosner, David E. Gutstein, Glenn I. Fishman

Research output: Contribution to journalArticlepeer-review

64 Scopus citations

Abstract

Ventricular tachycardia is a common heart rhythm disorder and a frequent cause of sudden cardiac death. Aberrant cell-cell coupling through gap junction channels, a process termed gap junction remodeling, is observed in many of the major forms of human heart disease and is associated with increased arrhythmic risk in both humans and in animal models. Genetically engineered mice with cardiac-restricted knockout of Connexin43, the major cardiac gap junctional protein, uniformly develop sudden cardiac death, although a detailed electrophysiological understanding of their profound arrhythmic propensity is unclear. Using voltage-sensitive dyes and high resolution optical mapping techniques, we found that uncoupling of the ventricular myocardium results in ectopic sites of ventricular activation. Our data indicate that this behavior reflects alterations in source-sink relationships and paradoxical conduction across normally quiescent Purkinje-ventricular muscle junctions. The aberrant activation profiles are associated with wavefront collisions, which in the setting of slow conduction may account for the highly arrhythmogenic behavior of Connexin43-deficient hearts. Thus, the extent of gap junction remodeling in diseased myocardium is a critical determinant of cardiac excitation patterns and arrhythmia susceptibility.

Original languageEnglish
Pages (from-to)4126-4129
Number of pages4
JournalProceedings of the National Academy of Sciences of the United States of America
Volume102
Issue number11
DOIs
StatePublished - 15 Mar 2005
Externally publishedYes

Keywords

  • Arrhythmia
  • Connexin43
  • Optical mapping
  • Purkinje fiber
  • Transgenic

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