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Mitochondrial uncoupling, with low concentration FCCP, induces ROS-dependent cardioprotection independent of KATP
Jonathan P Brennan1, Richard Southworth, Rodolfo A Medina
1Cardiac Physiology (Cardiovascular Division), The Rayne Institute, St Thomas' Hospital, King's College London, SE1 7EH, UK.
Objective:
Both K(ATP) channel opening drugs and ischaemic preconditioning have been suggested to protect the ischaemic heart by acting on K(ATP) channels in the inner mitochondrial membrane, uncoupling the proton gradient and partially dissipating the mitochondrial membrane potential. The aim of these studies was to use low concentrations of FCCP, a mitochondrial protonophore, to bypass the mitochondrial K(ATP) channel and partially uncouple the mitochondria and establish whether this activates protective pathways within the rat heart analogous to K(ATP) channel openers or preconditioning.
Methods:
Isolated, Langendorff-perfused rat hearts were subjected to 25 min global zero-flow ischaemia and functional recovery assessed. Hearts were pretreated with FCCP (30-300 nM) in the presence or absence of glibenclamide (1 microM), 5-hydroxydecanoate (5-HD: 100 microM), N-acetyl cysteine (4 mM), or N-2-mercaptopropionyl glycine (1 mM). The metabolic consequences of FCCP perfusion in isolated hearts were studied using (31)P NMR, and reactive oxygen species (ROS) production was measured using DCF fluorescence in isolated rat ventricular myocytes.
Results:
FCCP exerted a dose-dependent cardioprotective effect, with 100 nM FCCP being the optimal concentration. This effect could not be blocked by glibenclamide or 5-HD, but was completely attenuated by N-acetyl cysteine and N-2-mercaptopropionyl glycine. Perfusion with FCCP (100 nM) did not deplete bulk ATP during the pretreatment period but significantly depleted phosphocreatine. In ventricular myocytes, FCCP caused an antioxidant-sensitive increase in ROS production but diazoxide was without effect.
Conclusions:
In the isolated rat heart, partial mitochondrial uncoupling with low-dose FCCP significantly improves post-ischaemic functional recovery via a ROS-dependent pathway. This cardioprotection is not mediated via the depletion of cellular ATP or mitochondrial K(ATP) channel activation.
Insights
Low-dose FCCP (carbonyl cyanide 4-(trifluoromethoxy)phenylhydrazone) partially uncouples mitochondria, protecting the rat heart from ischaemia. This cardioprotection is mediated by reactive oxygen species (ROS) and not by K(ATP) channel activation.
Area of Science:
- Cardiology
- Mitochondrial Physiology
- Biochemistry
Background:
- Mitochondrial K(ATP) channels and ischaemic preconditioning protect the heart by dissipating the mitochondrial membrane potential.
- The precise mechanisms underlying this protection are not fully understood.
Purpose of the Study:
- To investigate if partial mitochondrial uncoupling using low-dose FCCP (carbonyl cyanide 4-(trifluoromethoxy)phenylhydrazone) can mimic the cardioprotective effects of K(ATP) channel openers and preconditioning.
- To determine the role of reactive oxygen species (ROS) and mitochondrial K(ATP) channels in FCCP-induced cardioprotection.
Main Methods:
- Isolated, Langendorff-perfused rat hearts underwent global zero-flow ischaemia after pretreatment with varying concentrations of FCCP.
- Hearts were also treated with glibenclamide, 5-hydroxydecanoate (5-HD), N-acetyl cysteine, or N-2-mercaptopropionyl glycine.
- Metabolic changes were assessed using (31)P NMR, and ROS production was measured in isolated ventricular myocytes.
Main Results:
- FCCP demonstrated a dose-dependent cardioprotective effect, with 100 nM being optimal.
- This protection was blocked by antioxidants (N-acetyl cysteine, N-2-mercaptopropionyl glycine) but not by K(ATP) channel blockers (glibenclamide, 5-HD).
- FCCP increased ROS production in a manner sensitive to antioxidants and did not deplete ATP levels.
Conclusions:
- Partial mitochondrial uncoupling with low-dose FCCP significantly enhances post-ischaemic functional recovery in rat hearts.
- The observed cardioprotection is dependent on ROS production.
- This protective effect is independent of mitochondrial K(ATP) channel activation or ATP depletion.
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