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Contractility Measurements on Isolated Papillary Muscles for the Investigation of Cardiac Inotropy in Mice
Published on: September 17, 2015
Alterations in the myocardial creatine kinase system precede the development of contractile dysfunction in
Matthias Spindler1, Stefan Engelhardt, Reinhard Niebler
1Medizinische Universitätsklinik Würzburg, Universität Würzburg, Josef-Schneider-Strasse 2, 97080 Wuerzburg, Germany. spindler@mail.uni-wuerzburg.de
Abstract:
The beta-adrenergic receptor system not only plays a central role in modulating heart rate and left-ventricular (LV) contractility, but is also involved in the development of heart failure. We have, recently, shown that heart-specific overexpression of the beta(1)-adrenergic receptor in transgenic mice (TG) initially leads to increased contractility, followed by LV hypertrophy and heart failure. Since one feature for all forms of heart failure are characteristic changes in myocardial energy metabolism, we asked whether alterations in energetics are detectable in these mice before signs of LV impairment are present. Myocardial energetics ((31)P NMR spectroscopy) and LV performance were measured simultaneously in isolated perfused hearts at different workloads. LV performance as well as contractile reserve was identical for hearts of 4-month-old TG and wild-type mice. The ratio of phosphocreatine to ATP (1.16 +/- 0.05 vs. 1.46 +/- 0.10) and total creatine content (17.6 +/- 1.2 vs. 22.6 +/- 0.9 mmol/l) were significantly reduced in TG. Furthermore, there was a significant decrease in creatine transporter content (-43%), mitochondrial (-44%) and total creatine kinase (CK) activity (-21%) as well as citrate synthase activity (-25%), indicating impaired oxidative energy generation in TG. In conclusion, these findings of alterations in the CK system, creatine metabolism and mitochondrial proteins in TG hearts prior to the development of LV dysfunction provide further evidence that changes in myocardial energetics play a central role in the deterioration of cardiac function after chronic beta-adrenergic stimulation.
Insights
Mice with increased beta-adrenergic receptors show altered myocardial energy metabolism before developing heart failure. These changes in creatine kinase system and mitochondrial function indicate impaired energy generation, crucial for cardiac health.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- The beta-adrenergic receptor system is vital for heart function and implicated in heart failure development.
- Heart-specific overexpression of the beta(1)-adrenergic receptor in transgenic mice leads to hypertrophy and heart failure.
- Myocardial energy metabolism changes are characteristic of heart failure.
Purpose of the Study:
- To investigate if alterations in myocardial energetics are detectable in transgenic mice before overt left-ventricular (LV) impairment.
- To understand the role of energy metabolism changes in the progression of heart failure.
Main Methods:
- Simultaneous measurement of myocardial energetics using (31)P NMR spectroscopy and LV performance in isolated perfused hearts.
- Analysis of hearts from 4-month-old transgenic (TG) and wild-type mice at different workloads.
- Quantification of creatine transporter, creatine kinase (CK) activity, and citrate synthase activity.
Main Results:
- LV performance and contractile reserve were similar in TG and wild-type hearts at 4 months.
- TG hearts showed significantly reduced phosphocreatine to ATP ratio and total creatine content.
- Decreased creatine transporter, mitochondrial and total CK activity, and citrate synthase activity indicated impaired oxidative energy generation in TG hearts.
Conclusions:
- Alterations in the CK system, creatine metabolism, and mitochondrial proteins occur in TG hearts before LV dysfunction.
- These findings support the central role of myocardial energetics changes in cardiac function deterioration following chronic beta-adrenergic stimulation.
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