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Published on: June 29, 2014
Defective excitation-contraction coupling in hearts of rats with congestive heart failure
I Sjaastad1, J A Birkeland, G Ferrier
1Institute for Experimental Medical Research, University of Oslo, Ullevål University Hospital, Oslo, Norway. ivar.sjaastad@medisin.uio.no
Insights
Congestive heart failure (CHF) in rats shows depressed cardiac contractility. This deficit is voltage-dependent, with impaired excitation-contraction coupling gain at negative potentials in heart failure cells.
Area of Science:
- Cardiology
- Cellular Physiology
- Heart Failure Research
Background:
- Congestive heart failure (CHF) significantly impairs cardiac contractility.
- Understanding the cellular mechanisms underlying CHF-induced contractility deficits is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the cellular basis of depressed cardiac contractility in a rat model of congestive heart failure (CHF) secondary to myocardial infarction.
- To determine the role of excitation-contraction coupling in the observed contractile dysfunction.
Main Methods:
- Induction of CHF in rats via left coronary artery ligation.
- Assessment of cardiac function using hemodynamic measures and echocardiography.
- Measurement of cell shortening and Ca2+ transients in isolated ventricular myocytes.
- Voltage-clamp electrophysiology to analyze L-type Ca2+ current.
Main Results:
- CHF myocytes exhibited reduced contraction force and velocity compared to sham-operated controls, particularly when stimulated from a more negative potential (-70 mV).
- Excitation-contraction coupling gain was selectively depressed in CHF myocytes at negative potentials (-70 mV) but not at depolarized potentials (-40 mV).
- L-type Ca2+ current and sarcoplasmic reticulum Ca2+ content were not significantly different between CHF and SHAM groups.
Conclusions:
- The contractile deficit in this post-infarction CHF model is voltage-dependent.
- Selective depression of excitation-contraction coupling gain at negative potentials contributes to cardiac dysfunction in CHF.
Aim:
We examined the cellular basis for depressed cardiac contractility in rats with congestive heart failure (CHF) secondary to myocardial infarction.
Methods:
Six weeks after ligation of the left coronary artery, CHF was confirmed by haemodynamic measures and echocardiographic demonstration of reduced myocardial contractility in vivo. Papillary muscles from CHF animals developed less force than those from sham operated (SHAM) animals. Cell shortening was measured in isolated ventricular myocytes voltage-clamped with high resistance electrodes. Ca2+ transients were measured in fluo-4 loaded myocytes.
Results:
Contractions triggered by depolarizing test steps from a post conditioning potential of -70 mV were significantly smaller and had significantly reduced velocity of shortening in CHF compared with SHAM myocytes. However, contractions initiated from -40 mV, were similar in amplitude and velocity of shortening in CHF and SHAM cells. L-type Ca2+ current was not significantly different between CHF and SHAM cells, whether activated from -70 or -40 mV. Therefore, in SHAM cells, excitation-contraction coupling exhibited higher gain when contractions were initiated from negative (-70 mV), as compared with depolarized potentials (-40 mV). However, in CHF myocytes, excitation-contraction coupling gain was selectively depressed with steps from -70 mV. This depression of gain in CHF was not accompanied by a significant reduction in sarcoplasmic reticulum Ca2+ content. Isoproterenol increased Ca2+ transients less in CHF than SHAM myocytes.
Conclusion:
In this post-infarction model of CHF, the contractile deficit was voltage dependent and the gain of excitation-contraction coupling was selectively depressed for contractions initiated negative to -40 mV.
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