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Published on: September 17, 2015
Alterations in excitation-contraction coupling in chronically ischemic or hibernating myocardium
Virginie Bito1, Frank R Heinzel, Piet Claus
1Laboratory of Experimental Cardiology.
Insights
Hibernating myocardium, a condition in coronary artery disease, involves cellular changes in heart muscle cells. This study reveals unique remodeling in cardiomyocytes, impacting their contraction and calcium handling, contributing to ischemic cardiomyopathy complexity.
Area of Science:
- Cardiology
- Cellular Biology
- Physiology
Background:
- Coronary artery disease can cause chronic contractile dysfunction without cell death, termed 'hibernating' myocardium.
- This dysfunction is adaptive to reduced blood flow and reversible with revascularization.
Purpose of the Study:
- To investigate the cellular mechanisms underlying hibernating myocardium.
- To characterize the intrinsic remodeling of cardiomyocytes in a pig model of coronary artery stenosis.
Main Methods:
- Isolated cardiomyocytes from hibernating (HIB) and control (CTRL) regions of pig hearts were studied.
- Cell shortening, calcium transients, action potentials, and L-type calcium currents were measured.
Main Results:
- Hibernating cardiomyocytes exhibited reduced cell shortening and modestly reduced calcium transients.
- Action potentials were prolonged in HIB myocytes, with decreased peak L-type calcium current.
- Contractile deficits persisted even with increased calcium availability, suggesting myofilament alterations.
Conclusions:
- This pig model demonstrates intrinsic myocyte remodeling with a distinct excitation-contraction coupling profile in hibernating myocardium.
- This phenotype adds to the understanding of cellular remodeling in ischemic cardiomyopathy.
Abstract:
In coronary artery disease, areas subtended by a severely stenotic artery or by collateral vessels can develop chronic contractile dysfunction in the absence of necrosis. This dysfunction is thought to be adaptive to the reduced flow reserve and can be reversible upon revascularization, hence the term 'hibernating' myocardium. In the present report, the underlying cellular mechanisms were studied in a pig with severe stenosis in the left circumflex coronary artery, resulting in hibernation in the distal myocardium.After six weeks, single cardiomyocytes were isolated enzymatically from the hibernating region (HIB) and their properties compared with those of cardiomyocytes from the same area in matched control pigs (CTRL). The amplitude of cell shortening during field stimulation (1 Hz) was reduced in HIB versus CTRL; the accompanying Ca(2+) transients were only modestly reduced. In whole cell recording, prolongation of action potential was observed in HIB. When this difference was excluded by using depolarizing steps of fixed duration in both HIB and CTRL, the Ca(2+) transients in HIB myocytes were reduced compared with CTRL. There was also a decrease in peak L-type Ca(2+) current in HIB. In intact cells, increasing the available Ca(2+) for contraction did not correct the contractile deficit in HIB, suggesting alterations to the myofilaments.In conclusion, in this pig model for hibernating myocardium, intrinsic remodelling of the myocytes with a unique profile of excitation-contraction coupling is demonstrated. Along with the changes observed in myocytes from the border zone of a myocardial infarction, or in the remote area, this specific phenotype adds to the diversity and complexity of the remodelling processes in ischemic cardiomyopathy.
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