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Journal of Pharmacology And Experimental Therapeutics Fast Forward
First published on February 27, 2008; DOI: 10.1124/jpet.107.133710


0022-3565/08/3252-417-424$20.00
JPET 325:417-424, 2008
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CARDIOVASCULAR

Oxygenated Perfluorochemicals Improve Cell Survival during Reoxygenation by Pacifying Mitochondrial Activity

Amina Arab, Klaus Kuemmerer, Jin Wang, Christoph Bode, and Christoph Hehrlein

Departments of Cardiology (A.A., J.W., C.B., C.H.) and Environmental Science (K.K.), University of Freiburg, Freiburg, Germany

Perfluorochemicals (PFCs) are known to provide a unique tool for controlled uptake and delivery of oxygen. We have characterized the effects of incremental oxygen delivery on cell viability of human ischemic cardiomyocytes using chemically inert PFCs as oxygen carrier. We have found that cell viability after prolonged ischemia depends on the dose of oxygen supplementation by oxygenated (ox) PFCs during reoxygenation. Although reoxygenation with the transient addition of oxPFCs in high concentrations (2250 µMO2 in 0.4 µM PFCs) results in decreased cell viability compared with normoxic reoxygenation, cell survival increases by 30 ± 4% after reoxygenation with moderate oxPFC concentrations (750 µM O2 in 0.1 µM PFCs). Immunoblot analysis revealed that oxPFC-supplemented reoxygenation causes marked (16-fold) deactivation of death-associated protein kinase (DAPK) signaling an increase in mitochondrial membrane potential and a decreased steady-state level of superoxide by 19 ± 3%. Reoxygenation with oxPFCs is further responsible for a 2-fold activation of AMP-activated protein kinase (AMPK) signaling an inadequate ATP supply by oxidative phosphorylation during reoxygenation. Addition of oxPFCs stabilizes both hypoxia-inducible factor (HIF) 1-{alpha} and 2-{alpha} during reoxygenation. Overall, these results indicate that moderate doses of oxPFCs can improve cell survival during reoxygenation, causing deactivation of DAPK, up-regulation of AMPK, and HIF1-{alpha} and 2-{alpha} stabilization. These effects of oxPFCs are dose-dependent, and they lead to a stabilization of the mitochondrial membrane potential, decreased steady-state levels of superoxide, and pacification of mitochondrial activity.


Received November 15, 2007; accepted February 25, 2008.

Address correspondence to: Dr. Amina Arab, Department of Cardiology, University of Freiburg, Hugstetterstrasse 55, D-79106 Freiburg i. Br, Germany. E-mail: arab{at}medizin.ukl.uni-freiburg.de







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