Enhanced Ca2+ influx through cardiac L-type Ca2+ channels maintains the systolic Ca2+ transient in early cardiac atrophy induced by mechanical unloading

被引:0
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作者
A. P. Schwoerer
S. Neef
I. Broichhausen
J. Jacubeit
M. Tiburcy
M. Wagner
D. Biermann
M. Didié
C. Vettel
L. S. Maier
W. H. Zimmermann
L. Carrier
T. Eschenhagen
T. Volk
A. El-Armouche
H. Ehmke
机构
[1] University Medical Center Hamburg-Eppendorf,Department of Cellular and Integrative Physiology, Cardiovascular Research Center
[2] DZHK (German Centre for Cardiovascular Research)—Hamburg/Kiel/Luebeck,Department of Cardiology, Heart Research Center
[3] Georg-August-University Goettingen,Institute of Pharmacology, Heart Research Center
[4] Georg-August-University Goettingen,Institute of Cellular and Molecular Physiology
[5] DZHK (German Centre for Cardiovascular Research)—Goettingen,Department of Cardiovascular Surgery, Center for Cardiology and Cardiovascular Surgery
[6] Friedrich-Alexander-University Erlangen-Nuremberg,Department of Experimental Pharmacology and Toxicology, Cardiovascular Research Center
[7] University Heart Center,Inserm, U974; CNRS, UMR7215; UPMC UM76
[8] University Medical Center Hamburg-Eppendorf,undefined
[9] University Medical Center Hamburg-Eppendorf,undefined
[10] Institut de Myologie,undefined
关键词
Cardiac atrophy; Ca; cycling; Rat; Heterotopic heart transplantation; Cardiac unloading;
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摘要
Cardiac atrophy as a consequence of mechanical unloading develops following exposure to microgravity or prolonged bed rest. It also plays a central role in the reverse remodelling induced by left ventricular unloading in patients with heart failure. Surprisingly, the intracellular Ca2+ transients which are pivotal to electromechanical coupling and to cardiac plasticity were repeatedly found to remain unaffected in early cardiac atrophy. To elucidate the mechanisms underlying the preservation of the Ca2+ transients, we investigated Ca2+ cycling in cardiomyocytes from mechanically unloaded (heterotopic abdominal heart transplantation) and control (orthotopic) hearts in syngeneic Lewis rats. Following 2 weeks of unloading, sarcoplasmic reticulum (SR) Ca2+ content was reduced by ~55 %. Atrophic cardiac myocytes also showed a much lower frequency of spontaneous diastolic Ca2+ sparks and a diminished systolic Ca2+ release, even though the expression of ryanodine receptors was increased by ~30 %. In contrast, current clamp recordings revealed prolonged action potentials in endocardial as well as epicardial myocytes which were associated with a two to fourfold higher sarcolemmal Ca2+ influx under action potential clamp. In addition, Cav1.2 subunits which form the pore of L-type Ca2+ channels (LTCC) were upregulated in atrophic myocardium. These data suggest that in early cardiac atrophy induced by mechanical unloading, an augmented sarcolemmal Ca2+ influx through LTCC fully compensates for a reduced systolic SR Ca2+ release to preserve the Ca2+ transient. This interplay involves an electrophysiological remodelling as well as changes in the expression of cardiac ion channels.
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页码:1763 / 1773
页数:10
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