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Atorvastatin regulates apoptosis in chronically ischemic myocardium
Ashraf A Sabe1, Nassrene Y Elmadhun, Ahmed A Sadek
1Division of Cardiothoracic Surgery, Cardiovascular Research Center, Warren Alpert School of Medicine, Brown University, Providence, Rhode Island.
Insights
Atorvastatin increased markers of apoptosis and cell survival proteins in swine with chronic myocardial ischemia. Despite increased apoptosis markers, atorvastatin ultimately reduced overall apoptosis, suggesting a protective effect.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Cell Biology
Background:
- Atorvastatin previously showed proangiogenic effects in ischemic myocardium.
- Lack of collateral-dependent perfusion despite angiogenesis may relate to apoptosis.
- This study investigates atorvastatin's impact on apoptosis in a swine model.
Purpose of the Study:
- To investigate the effects of atorvastatin on apoptosis in a swine model of metabolic syndrome and chronic myocardial ischemia.
- To elucidate the complex role of atorvastatin in myocardial injury and repair.
Main Methods:
- Ossabaw miniswine fed a high-cholesterol diet for 14 weeks.
- Surgical induction of chronic ischemia via circumflex artery ameroid constrictor.
- Atorvastatin supplementation (1.5 mg/kg daily) in a subset of pigs.
- Myocardium analysis using Western blotting and TUNEL staining.
Main Results:
- Atorvastatin increased apoptosis markers: p-38, BAX, and caspase 3.
- Atorvastatin also increased anti-apoptotic proteins: Bcl-2 and P-ERK.
- TUNEL staining demonstrated an overall significant decrease in apoptosis with atorvastatin.
Conclusions:
- Atorvastatin influences multiple cellular pathways, including both pro- and anti-apoptotic markers.
- Despite increased pro-apoptotic markers, atorvastatin resulted in a net decrease in apoptosis.
- Further research is needed to fully understand statin's role in myocardial protection post-ischemia.
Background:
We previously demonstrated that atorvastatin upregulates proangiogenic proteins and increases arteriolar density in ischemic myocardium. Despite this, there was a lack of collateral-dependent perfusion, possibly related to apoptosis. We utilized a swine model of metabolic syndrome and chronic myocardial ischemia to investigate the effects of atorvastatin on apoptosis.
Materials And Methods:
Sixteen Ossabaw miniswine were fed a high-cholesterol diet for 14 weeks then underwent surgical placement of an ameroid constrictor to their circumflex artery inducing chronic ischemia. Eight pigs additionally received supplemental atorvastatin (1.5 mg/kg daily). Myocardium was harvested six months later for western blotting and TUNEL staining.
Results:
Animals supplemented with atorvastatin had significant increases in markers associated with apoptosis including p-38, BAX, and caspase 3 (p < 0.05). Atorvastatin supplementation also resulted in significant increases in expression of cell survival proteins Bcl-2 and P-ERK and an overall decrease in apoptosis demonstrated by TUNEL staining (p < 0.05).
Conclusions:
Atorvastatin acts on multiple pathways and its effects on angiogenesis remain unclear. Although there is increased expression in several markers of apoptosis, key anti-apoptotic proteins were also upregulated with an overall decrease in apoptosis. Further investigation of these pathways may provide insight into the role of statins on myocardial protection after ischemia.
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