Literature DB >> 12615798

Contractile reserve and calcium regulation are depressed in myocytes from chronically unloaded hearts.

Kenta Ito1, Masaharu Nakayama, Faisal Hasan, Xinhua Yan, Michael D Schneider, Beverly H Lorell.   

Abstract

BACKGROUND: Chronic cardiac unloading of the normal heart results in the reduction of left ventricular (LV) mass, but effects on myocyte contractile function are not known. METHODS AND
RESULTS: Cardiac unloading and reduction in LV mass were induced by heterotopic heart transplantation to the abdominal aorta in isogenic rats. Contractility and [Ca(2+)](i) regulation in LV myocytes were studied at both 2 and 5 weeks after transplantation. Native in situ hearts from recipient animals were used as the controls for all experiments. Contractile function indices in myocytes from 2-week unloaded and native (control) hearts were similar under baseline conditions (0.5 Hz, 1.2 mmol/L [Ca(2+)](o), and 36 degrees C) and in response to stimulation with high [Ca(2+)](o) (range 2.5 to 4.0 mmol/L). In myocytes from 5-week unloaded hearts, there were no differences in fractional cell shortening and peak-systolic [Ca(2+)](i) at baseline; however, time to 50% relengthening and time to 50% decline in [Ca(2+)](i) were prolonged compared with controls. Severe defects in fractional cell shortening and peak-systolic [Ca(2+)](i) were elicited in myocytes from 5-week unloaded hearts in response to high [Ca(2+)](o). However, there were no differences in the contractile response to isoproterenol between myocytes from unloaded and native hearts. In 5-week unloaded hearts, but not in 2-week unloaded hearts, LV protein levels of phospholamban were increased (345% of native heart values). Protein levels of sarcoplasmic reticulum Ca(2+) ATPase and the Na(+)/Ca(2+) exchanger were not changed.
CONCLUSIONS: Chronic unloading of the normal heart caused a time-dependent depression of myocyte contractile function, suggesting the potential for impaired performance in states associated with prolonged cardiac atrophy.

Entities:  

Keywords:  NASA Discipline Cardiopulmonary; Non-NASA Center

Mesh:

Substances:

Year:  2003        PMID: 12615798     DOI: 10.1161/01.cir.0000051463.72137.96

Source DB:  PubMed          Journal:  Circulation        ISSN: 0009-7322            Impact factor:   29.690


  12 in total

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Authors:  Craig R Butler; Bodh I Jugdutt
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3.  Prolonged mechanical unloading affects cardiomyocyte excitation-contraction coupling, transverse-tubule structure, and the cell surface.

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4.  Evidence for synergy between sarcomeres and fibroblasts in an in vitro model of myocardial reverse remodeling.

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5.  Impact of combined clenbuterol and metoprolol therapy on reverse remodelling during mechanical unloading.

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Journal:  PLoS One       Date:  2014-09-30       Impact factor: 3.240

Review 6.  Rat Heterotopic Heart Transplantation Model to Investigate Unloading-Induced Myocardial Remodeling.

Authors:  Xuebin Fu; Adrian Segiser; Thierry P Carrel; Hendrik T Tevaearai Stahel; Henriette Most
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8.  Enhanced Ca²+ influx through cardiac L-type Ca²+ channels maintains the systolic Ca²+ transient in early cardiac atrophy induced by mechanical unloading.

Authors:  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
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9.  Role and possible mechanisms of clenbuterol in enhancing reverse remodelling during mechanical unloading in murine heart failure.

Authors:  Gopal K R Soppa; Joon Lee; Mark A Stagg; Leanne E Felkin; Paul J R Barton; Urszula Siedlecka; Samuel Youssef; Magdi H Yacoub; Cesare M N Terracciano
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10.  Isovolumic loading of the failing heart by intraventricular placement of a spring expander attenuates cardiac atrophy after heterotopic heart transplantation.

Authors:  Martin Pokorný; Iveta Mrázová; Jan Šochman; Vojtěch Melenovský; Jiří Malý; Jan Pirk; Lenka Červenková; Janusz Sadowski; Zdeněk Čermák; Karel Volenec; Šárka Vacková; Hana Maxová; Luděk Červenka; Ivan Netuka
Journal:  Biosci Rep       Date:  2018-06-27       Impact factor: 3.840

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