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Increased release of arachidonic acid and eicosanoids in iron-overloaded cardiomyocytes
R Mattera1, G P Stone, N Bahhur
1Rammelkamp Center for Education and Research, MetroHealth Medical Center, Department of Medicine, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA. matterar@helix.nih.gov
Insights
Iron overload in heart cells increases arachidonic acid (AA) release and alters its metabolism, potentially causing heart rhythm problems. This study investigated these changes in cardiomyocytes.
Area of Science:
- Cardiovascular Biology
- Cellular Metabolism
- Toxicology
Background:
- Transfusional iron overload can lead to life-limiting cardiomyopathy.
- Lipid-metabolizing enzymes are sensitive to peroxidative injury.
- Arachidonic acid (AA) and its metabolites affect cardiac rhythm.
Purpose of the Study:
- To investigate if iron-overloaded cardiomyocytes exhibit altered arachidonic acid (AA) release and prostaglandin production.
- To explore the mechanisms behind these alterations.
Main Methods:
- Neonatal rat ventricular myocytes (NRVMs) were cultured with ferric ammonium citrate to induce iron overload.
- Arachidonic acid (AA) release, incorporation into phospholipids, and eicosanoid production were measured.
- The effects of specific enzyme inhibitors were assessed.
Main Results:
- Iron overload significantly increased AA release in NRVMs under resting and stimulated conditions.
- Iron treatment altered AA distribution into phosphatidylcholine species and increased eicosanoid production.
- Increased AA release was mediated by diacylglycerol lipase, not phospholipases A(2) or C.
Conclusions:
- Iron overload enhances AA release, phosphatidylcholine incorporation, cyclooxygenase-2 induction, and eicosanoid production in NRVMs.
- These findings suggest a link between AA metabolites and the electromechanical changes observed in iron-overload-induced cardiomyopathy.
Background:
Patients with transfusional iron overload may develop a life-limiting cardiomyopathy. The sensitivity of lipid-metabolizing enzymes to peroxidative injury, as well as the reported effects of arachidonic acid (AA) and metabolites on cardiac rhythm, led us to hypothesize that iron-overloaded cardiomyocytes display alterations in the release of AA and prostaglandins.
Methods And Results:
Neonatal rat ventricular myocytes (NRVMs) cultured for 72 hours in the presence of 80 microgram/mL ferric ammonium citrate displayed an increased rate of AA release, both under resting conditions and after stimulation with agonists such as [Sar(1)]Ang II. Although iron treatment did not affect overall incorporation of [(3)H]AA into NRVM phospholipids, it caused a 2-fold increase in the distribution of precursor in phosphatidylcholine species, with a proportional decrease in phosphatidylinositol, phosphatidylserine, and phosphatidylethanolamine. Increased release of AA in iron-overloaded NRVMs was reduced by the diacylglycerol lipase inhibitor RHC80267 but was largely insensitive to inhibitors of phospholipases A(2) and C. Iron-overloaded cardiomyocytes also displayed increased production of eicosanoids and induction of cyclooxygenase-2 after stimulation with interleukin-1alpha.
Conclusions:
Iron overload enhances AA release and incorporation of AA into phosphatidylcholine, as well as cyclooxygenase-2 induction and eicosanoid production, in NRVMS: The effects of AA and metabolites on cardiomyocyte rhythmicity suggest a causal connection between these signals and electromechanical alterations in iron-overload-induced cardiomyopathy.
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