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Permanent Ligation of the Left Anterior Descending Coronary Artery in Mice: A Model of Post-myocardial Infarction Remodelling and Heart Failure
Published on: December 2, 2014
Slowing of cardiomyocyte Ca2+ release and contraction during heart failure progression in postinfarction mice
Halvor K Mørk1, Ivar Sjaastad, Ole M Sejersted
1Institute for Experimental Medical Research, 4. etg. Kirurgisk Bygning, Ullevaal Univ. Hospital, 0407 Oslo, Norway. h.k.mork@medisin.uio.no).
Insights
Congestive heart failure (CHF) slows cardiomyocyte contraction but does not reduce its magnitude. Altered calcium handling in heart cells contributes to this slowing, impacting cardiac function progression after myocardial infarction.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Congestive heart failure (CHF) is characterized by impaired cardiac contractility, potentially due to cardiomyocyte dysfunction.
- Understanding the progression of contractile deficits and underlying calcium (Ca2+) handling abnormalities is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the in vivo and in vitro changes in cardiac contractile function and Ca2+ homeostasis during the progression of congestive heart failure (CHF) in a mouse model.
- To elucidate the role of altered Ca2+ handling in cardiomyocyte dysfunction in CHF.
Main Methods:
- Induction of myocardial infarction (MI) in mice to establish a CHF model, with assessments at early (1 week) and chronic (10 weeks) stages.
- Evaluation of global and local left ventricular function using echocardiography.
- Analysis of excitation-contraction coupling and Ca2+ transients in isolated cardiomyocytes.
Main Results:
- CHF progression led to increased mortality, cardiac hypertrophy, and deteriorated global left ventricular function.
- Local myocardial function and cardiomyocyte contraction/Ca2+ transient kinetics slowed significantly in chronic CHF.
- Surprisingly, contraction and Ca2+ transient magnitudes increased in CHF due to elevated sarcoplasmic reticulum Ca2+ content and L-type channel influx.
Conclusions:
- Declining cardiac function in post-MI CHF involves a slowing of cardiomyocyte contraction kinetics, not a reduction in magnitude.
- Altered Ca2+ transients, specifically slowed Ca2+ release, are critical mediators in the progression of CHF.
- Increased intracellular Ca2+ handling contributes to altered cardiomyocyte function in CHF.
Abstract:
Deterioration of cardiac contractility during congestive heart failure (CHF) is believed to involve decreased function of individual cardiomyocytes and may include reductions in contraction magnitude and/or kinetics. We examined the progression of in vivo and in vitro alterations in contractile function in CHF mice and investigated underlying alterations in Ca(2+) homeostasis. Following induction of myocardial infarction (MI), mice with CHF were examined at early (1 wk post-MI) and chronic (10 wk post-MI) stages of disease development. Sham-operated mice served as controls. Global and local left ventricle function were assessed by echocardiography in sedated animals ( approximately 2% isoflurane). Excitation-contraction coupling was examined in cardiomyocytes isolated from the viable septum. CHF progression between 1 and 10 wk post-MI resulted in increased mortality, development of hypertrophy, and deterioration of global left ventricular function. Local function in the noninfarcted myocardium also declined, as posterior wall shortening velocity was reduced in chronic CHF (1.2 +/- 0.1 vs. 1.9 +/- 0.2 cm/s in sham). Parallel alterations occurred in isolated cardiomyocytes since contraction and Ca(2+) transient time to peak values were prolonged in chronic CHF (115 +/- 6 and 158 +/- 11% sham values, respectively). Surprisingly, contraction and Ca(2+) transient magnitudes in CHF were larger than sham values at both time points, resulting from increased sarcoplasmic reticulum Ca(2+) content and greater Ca(2+) influx via L-type channels. We conclude that, in mice with CHF following myocardial infarction, declining myocardial function involves slowing of cardiomyocyte contraction without reduction in contraction magnitude. Corresponding alterations in Ca(2+) transients suggest that slowing of Ca(2+) release is a critical mediator of CHF progression.
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