Reversal of Chronic Molecular and Cellular Abnormalities Due to Heart Failure by Passive Mechanical Ventricular Containment
- 28 November 2003
- journal article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 93 (11) , 1095-1101
- https://doi.org/10.1161/01.res.0000101932.70443.fe
Abstract
Passive mechanical containment of failing left ventricle (LV) with the Acorn Cardiac Support Device (CSD) was shown to prevent progressive LV dilation in dogs with heart failure (HF) and increase ejection fraction. To examine possible mechanisms for improved LV function with the CSD, we examined the effect of CSD therapy on the expression of cardiac stretch response proteins, myocyte hypertrophy, sarcoplasmic reticulum Ca 2+ -ATPase activity and uptake, and mRNA gene expression for myosin heavy chain (MHC) isoforms. HF was produced in 12 dogs by intracoronary microembolization. Six dogs were implanted with the CSD and 6 served as concurrent controls. LV tissue from 6 normal dogs was used for comparison. Compared with normal dogs, untreated HF dogs showed reduced cardiomyocyte contraction and relaxation, upregulation of stretch response proteins (p21ras, c-fos, and p38 α/β mitogen-activated protein kinase), increased myocyte hypertrophy, reduced SERCA2a activity with unchanged affinity for calcium, reduced proportion of mRNA gene expression for α-MHC, and increased proportion of β-MHC. Therapy with the CSD was associated with improved cardiomyocyte contraction and relaxation, downregulation of stretch response proteins, attenuation of cardiomyocyte hypertrophy, increased affinity of the pump for calcium, and restoration of α- and β-MHC isoforms ratio. The results suggest that preventing LV dilation and stretch with the CSD promotes downregulation of stretch response proteins, attenuates myocyte hypertrophy and improves SR calcium cycling. These data offer possible mechanisms for improvement of LV function after CSD therapy.Keywords
This publication has 30 references indexed in Scilit:
- Device-based change in left ventricular shape: A new concept for the treatment of dilated cardiomyopathyThe Journal of Thoracic and Cardiovascular Surgery, 2001
- Cytoplasmic Signaling Pathways That Regulate Cardiac HypertrophyAnnual Review of Physiology, 2001
- Left ventricular assist device-induced reverse ventricular remodelingProgress in Cardiovascular Diseases, 2000
- Reduced Sarcoplasmic Reticulum Ca2+-Uptake and Expression of Phospholamban in Left Ventricular Myocardium of Dogs with Heart FailureJournal of Molecular and Cellular Cardiology, 1999
- Modification of Cardiac Subcellular Remodeling Due to Pressure Overload by Captopril and LosartanClinical and Experimental Hypertension, 1999
- Myosin heavy chain gene expression in human heart failure.Journal of Clinical Investigation, 1997
- Girdling effect of nonstimulated cardiomyoplasty on left ventricular functionThe Annals of Thoracic Surgery, 1993
- Changes in rat ventricular isomyosins with regression of cardiac hypertrophy.Hypertension, 1986
- The ATPase activities of rat cardiac myosin isoenzymesFEBS Letters, 1980
- Usefulness and limitations of radiographic methods for determining left ventricular volumeThe American Journal of Cardiology, 1966