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Published on: June 14, 2016
Cardiac mechanical efficiency is preserved in primary cardiac hypertrophy despite impaired mechanical function
June-Chiew Han1, Kenneth Tran1, David J Crossman2
1Auckland Bioengineering Institute, University of Auckland, Auckland, New Zealand.
Insights
Cardiac hypertrophy, or enlarged heart, impairs heart muscle function but maintains energy efficiency. This study reveals key insights into the mechano-energetics of heart failure, guiding future research on metabolic and calcium disturbances.
Area of Science:
- Cardiology
- Physiology
- Biophysics
Background:
- Increased heart size (cardiac hypertrophy) is a significant risk factor for heart failure and mortality.
- Hypertension-induced cardiac hypertrophy often involves impaired mechano-energetics and cardiac efficiency, but the direct link remains unclear.
Purpose of the Study:
- To investigate the direct association between cardiac hypertrophy and cardiac mechano-energetics.
- To utilize isolated left-ventricular trabeculae from a rat model of primary cardiac hypertrophy.
Main Methods:
- Simultaneously evaluated energy expenditure (heat output) and mechanical performance (force, work) using microcalorimetry.
- Assessed energy expenditure related to cross-bridge and Ca2+ cycling (activation heat).
- Quantified mechanical and cross-bridge energy efficiency at varying preloads and afterloads.
Main Results:
- Cardiac hypertrophy led to increased cardiomyocyte size and impaired mechanical performance (lower force, shortening, work output).
- Reduced force production correlated with decreased energy expenditure in Ca2+ and cross-bridge cycling.
- Notably, both mechanical and cross-bridge energy efficiency remained unchanged despite hypertrophy.
Conclusions:
- Cardiac hypertrophy is directly associated with impaired contractile function.
- Energy efficiency is preserved in the presence of cardiac hypertrophy.
- Findings highlight the need to investigate metabolic and Ca2+ disturbances in cardiac mechanical and energetic impairment.
Abstract:
Increased heart size is a major risk factor for heart failure and premature mortality. Although abnormal heart growth subsequent to hypertension often accompanies disturbances in mechano-energetics and cardiac efficiency, it remains uncertain whether hypertrophy is their primary driver. In this study, we aimed to investigate the direct association between cardiac hypertrophy and cardiac mechano-energetics using isolated left-ventricular trabeculae from a rat model of primary cardiac hypertrophy and its control. We evaluated energy expenditure (heat output) and mechanical performance (force length work production) simultaneously at a range of preloads and afterloads in a microcalorimeter, we determined energy expenditure related to cross-bridge cycling and Ca2+ cycling (activation heat), and we quantified energy efficiency. Rats with cardiac hypertrophy exhibited increased cardiomyocyte length and width. Their trabeculae showed mechanical impairment, evidenced by lower force production, extent and kinetics of shortening, and work output. Lower force was associated with lower energy expenditure related to Ca2+ cycling and to cross-bridge cycling. However, despite these changes, both mechanical and cross-bridge energy efficiency were unchanged. Our results show that cardiac hypertrophy is associated with impaired contractile performance and with preservation of energy efficiency. These findings provide direction for future investigations targeting metabolic and Ca2+ disturbances underlying cardiac mechanical and energetic impairment in primary cardiac hypertrophy.
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