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May 19, 2006The Journal of Physiology259 citationsOpen Access

T‐tubule disorganization and reduced synchrony of Ca2+ release in murine cardiomyocytes following myocardial infarction

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WLWilliam E. LouchHMHalvor K. MørkJSJoseph Sexton

Key Points

  • This study aims to explore the changes in T-tubule organization and Ca2+ release synchrony in cardiomyocytes after myocardial infarction.
  • Induced myocardial infarction by ligating the left coronary artery in a murine model.

Structured PICO

Does progressive T-tubule disorganization occur and promote dyssynchrony of SR Ca2+ release in a murine model of CHF following MI?

P
Population
Murine model of congestive heart failure (CHF) induced by left coronary artery ligation, diagnosed by echocardiography (left atrial diameter >2.0 mm). Cardiomyocytes isolated from viable regions of the septum.
I
Intervention
Myocardial infarction (MI) induced by ligation of the left coronary artery, assessed at 1 or 3 weeks post-MI.
C
Comparator
Septal myocytes from SHAM-operated mice.
O
Outcome
T-tubule organization and Ca2+ release synchrony.surrogate

Progressive T-tubule disorganization during CHF promotes dyssynchrony of SR Ca2+ release, which may contribute to the slowing of SR Ca2+ release in heart failure.

Abstract

In cardiac myocytes, initiation of excitation-contraction coupling is highly localized near the T-tubule network. Myocytes with a dense T-tubule network exhibit rapid and homogeneous sarcoplasmic reticulum (SR) Ca(2+) release throughout the cell. We examined whether progressive changes in T-tubule organization and Ca(2+) release synchrony occur in a murine model of congestive heart failure (CHF). Myocardial infarction (MI) was induced by ligation of the left coronary artery, and CHF was diagnosed by echocardiography (left atrial diameter >2.0 mm). CHF mice were killed at 1 or 3 weeks following MI (1-week CHF, 3-week CHF) and cardiomyocytes were isolated from viable regions of the septum, excluding the MI border zone. Septal myocytes from SHAM-operated mice served as controls. T-tubules were visualized by confocal microscopy in cells stained with di-8-ANEPPS. SHAM cells exhibited a regular striated T-tubule pattern. However, 1-week CHF cells showed slightly disorganized T-tubule structure, and more profound disorganization occurred in 3-week CHF with irregular gaps between adjacent T-tubules. Line-scan images of Ca(2+) transients (fluo-4 AM, 1 Hz) showed that regions of delayed Ca(2+) release occurred at these gaps. Three-week CHF cells exhibited an increased number of delayed release regions, and increased overall dyssynchrony of Ca(2+) release. A common pattern of Ca(2+) release in 3-week CHF was maintained between consecutive transients, and was not altered by forskolin application. Thus, progressive T-tubule disorganization during CHF promotes dyssynchrony of SR Ca(2+) release which may contribute to the slowing of SR Ca(2+) release in this condition.

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Cite This Study

Louch et al. (2006) studied this question.

synapsesocial.com/papers/69d570e075589c71d767dfc1https://doi.org/10.1113/jphysiol.2006.107227
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