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March 1, 1992Circulation182 citationsOpen Access

Abnormal electrical properties of myocytes from chronically infarcted canine heart. Alterations in Vmax and the transient outward current.

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WLWei-Ming LueNational Defense Medical CenterPBPenelope A. BoydenElectrophysiology

Key Result

Myocytes from the epicardial border zone of infarcted canine hearts showed altered Vmax and a dramatic loss of the transient outward current (ito1), present in only 37% of infarcted cells vs 100% of controls.

Key Points

  • This research aims to understand the electrical properties of myocytes in chronically infarcted canine hearts and the implications for arrhythmias.
  • Developed a method to disperse myocytes from the epicardial border zone of chronically infarcted canines.
  • Compared electrophysiological properties of myocytes from infarcted and control (noninfarcted) hearts using whole-cell voltage clamp techniques.
  • Assessed transmembrane action potentials and density of the transient outward current (ito1) in isolated myocytes.
  • IZs showed a significantly reduced maximum upstroke velocity (Vmax) compared to NZs, indicating impaired electrical activity.
  • 37% of IZs exhibited the transient outward current (ito1), compared to 100% of NZs, demonstrating a severe reduction in ionic channel function.
  • Action potentials in IZ myocytes lacked the typical 'spike and dome' morphology seen in NZ myocytes.

Structured PICO

P
Population
Myocytes dispersed from the epicardial border zone of canine hearts 5 days after coronary artery occlusion (IZs)
I
Intervention
Coronary artery occlusion (infarction model)
C
Comparator
Myocytes from the epicardium of control noninfarcted (NZs) and sham-operated animals (NZsham)
O
Outcome
Electrophysiological properties including transmembrane action potentials, Vmax, and transient outward current (ito1)surrogate

Myocytes surviving in the infarcted canine heart exhibit significant electrophysiological alterations, including reduced Vmax and loss of the transient outward current (ito1), which may contribute to reentrant ventricular arrhythmias.

Main Result

Absolute Event Rate: 37% vs 100%

Abstract

BACKGROUND: Reentrant ventricular arrhythmias can occur in the surviving muscle fibers of the epicardial border zone of the canine heart 5 days after coronary artery occlusion. To understand the cellular basis of these arrhythmias, we developed a method of dispersing myocytes (IZs) from the epicardial border zone. METHODS AND RESULTS: We compared the electrophysiological properties of IZs with those of cells dispersed from the epicardium of control noninfarcted (NZs) and of sham-operated animals (NZsham). Transmembrane action potentials of IZs are reduced in total action potential amplitude and maximum upstroke velocity compared with NZs. However, resting potential of IZs is no different from that of NZs. Action potential duration at -10 mV is significantly reduced in IZs compared with control, and IZ potentials do not show the typical "spike and dome" morphology that is evident in all NZs. Using Vmax as an indirect measure of the peak inward current available for the upstroke of the action potential, we found that the availability curve for IZs is significantly different from the NZ curve. Furthermore, the time course of recovery of Vmax after a depolarizing voltage clamp step was significantly altered in IZs. Using whole-cell voltage clamp techniques, we determined that the voltage-dependent, Ca(2+)-independent, 4-aminopyridine-sensitive transient outward current (ito1) occurred in all NZs (n = 16) but existed in only 37% of IZs (n = 16). There was a significant reduction in the density of ito1 elicited by depolarizing steps in those IZs showing ito1 compared with ito1 density in NZs. CONCLUSIONS: We have developed a single-cell model of cells that survive in the infarcted heart. Our studies indicate that there are changes in Vmax in IZs. In addition, there is no prominent phase 1 of repolarization in IZ action potentials. This is consistent with the dramatic loss in the function of the ionic channel responsible for the voltage-dependent transient outward current, ito1.

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Cite This Study

Lue et al. (1992) studied Myocardial infarction (canine model). Myocytes from epicardial border zone of infarcted hearts (IZs) vs. Myocytes from epicardium of control noninfarcted (NZs) and sham-operated animals was evaluated on Presence of transient outward current (ito1). Myocytes from the epicardial border zone of infarcted canine hearts showed altered Vmax and a dramatic loss of the transient outward current (ito1), present in only 37% of infarcted cells vs 100% of controls.

synapsesocial.com/papers/6a0f7a2f2badbc352afe39d6https://doi.org/10.1161/01.cir.85.3.1175
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Delayed Development of Ventricular Ectopic Rhythms following Experimental Coronary Occlusion1950 · 673 citations
  2. 2Influence of cardiac fiber orientation on wavefront voltage, conduction velocity, and tissue resistivity in the dog.1979 · 438 citations
  3. 3Influences of anisotropic tissue structure on reentrant circuits in the epicardial border zone of subacute canine infarcts.1988 · 521 citations
  4. 4Passive properties and membrane currents of canine ventricular myocytes.1987 · 107 citations
  5. 5Canine ventricular arrhythmias in the late myocardial infarction period. 8. Epicardial mapping of reentrant circuits.1981 · 256 citations