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Published on: April 26, 2015
Treatment with atorvastatin partially protects the rat heart from harmful catecholamine effects
Ariane Schmechel1, Michael Grimm, Ali El-Armouche
1Department of Experimental and Clinical Pharmacology, University Medical Center Hamburg-Eppendorf, Martinistr. 52, 20246 Hamburg, Germany.
Insights
Atorvastatin protects the rat heart from catecholamine damage by altering G protein signaling. This cholesterol-lowering drug shifts key proteins, reducing harmful effects without impacting heart rate.
Area of Science:
- Cardiology
- Pharmacology
- Molecular Biology
Background:
- Cardiomyocytes respond to catecholamines via G protein-coupled receptors.
- Atorvastatin is known to reduce G gamma subunit isoprenylation, potentially blunting this response.
- The in vivo cardioprotective effects of atorvastatin against catecholamine stress require investigation.
Purpose of the Study:
- To determine if atorvastatin protects the rat heart from catecholamine-induced harm in vivo.
- To investigate the underlying molecular mechanisms, specifically G protein translocation.
Main Methods:
- Rats received atorvastatin (1 or 10 mg/kg) or water for 14 days.
- Animals underwent restraint stress and isoprenaline (ISO) infusion.
- Heart-to-body weight ratio, ANP mRNA, and atrial contractility were assessed.
Main Results:
- Isoprenaline increased heart-to-body weight ratio, ANP mRNA, and reduced atrial contractility.
- High-dose atorvastatin significantly attenuated these ISO-induced effects.
- Atorvastatin treatment led to G gamma and G alpha(s) translocation from cardiac membranes to the cytosol.
Conclusions:
- Atorvastatin treatment induces translocation of cardiac G gamma and G alpha(s) subunits.
- This mechanism contributes to cardioprotection against chronic isoprenaline infusion.
- The protective effect occurs without altering heart rate.
Aims:
Atorvastatin blunts the response of cardiomyocytes to catecholamines by reducing isoprenylation of G gamma subunits. We examined whether atorvastatin exerts similar effects in vivo and protects the rat heart from harmful effects of catecholamines.
Methods And Results:
Rats were treated with atorvastatin (1 or 10 mg/kg x day) or H(2)O for 14 days per gavage. All three animal groups were subjected to restraint stress on day 10 and to infusions of isoprenaline (ISO; 1 mg/kg x day) or NaCl via minipumps for the last 4 days. Heart rate was measured by telemetry, left ventricular atrial natriuretic peptide (ANP) transcript levels by RT-PCR, and left atrial contractile function in organ baths. Heart rate was similar in all six study groups. In animals pre-treated with water, infusion of ISO induced an increase in heart-to-body weight ratio (HW/BW) by approximately 20%, an increase in ANP mRNA by approximately 350%, and a reduction in the inotropic effect of isoprenaline in left atrium by approximately 50%. In animals pre-treated with high-dose atorvastatin, the effects of ISO on HW/BW, ANP, and left atrial force were approximately 40, 50, and 40% smaller, respectively. Low dose atorvastatin had similar, albeit smaller effects. Atorvastatin treatment of NaCl-infused rats had only marginal effects. In cardiac homogenates from atorvastatin-treated rats (both NaCl- and ISO-infused), G gamma and G alpha(s) were partially translocated from the membrane to the cytosol.
Conclusion:
In the rat heart, treatment with atorvastatin results in translocation of cardiac membrane G gamma and G alpha(s) to the cytosol. This mechanism might contribute to protecting the heart from harm induced by chronic isoprenaline infusion without affecting heart rate.
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