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Published on: February 24, 2018
Mitochondrial reactive oxygen species: which ROS signals cardioprotection?
Anders O Garlid1, Martin Jaburek, Jeremy P Jacobs
1Department of Biology, Portland State University, Portland, Oregon; and.
Abstract:
Mitochondria are the major effectors of cardioprotection by procedures that open the mitochondrial ATP-sensitive potassium channel (mitoKATP), including ischemic and pharmacological preconditioning. MitoKATP opening leads to increased reactive oxygen species (ROS), which then activate a mitoKATP-associated PKCε, which phosphorylates mitoKATP and leaves it in a persistent open state (Costa AD, Garlid KD. Am J Physiol Heart Circ Physiol 295, H874-H882, 2008). The ROS responsible for this effect is not known. The present study focuses on superoxide (O2(·-)), hydrogen peroxide (H2O2), and hydroxyl radical (HO(·)), each of which has been proposed as the signaling ROS. Feedback activation of mitoKATP provides an ideal setting for studying endogenous ROS signaling. Respiring rat heart mitochondria were preincubated with ATP and diazoxide, together with an agent being tested for interference with this process, either by scavenging ROS or by blocking ROS transformations. The mitochondria were then assayed to determine whether or not the persistent phosphorylated open state was achieved. Dimethylsulfoxide (DMSO), dimethylformamide (DMF), deferoxamine, Trolox, and bromoenol lactone each interfered with formation of the ROS-dependent open state. Catalase did not interfere with this step. We also found that DMF blocked cardioprotection by both ischemic preconditioning and diazoxide. The lack of a catalase effect and the inhibitory effects of agents acting downstream of HO(·) excludes H2O2 as the endogenous signaling ROS. Taken together, the results support the conclusion that the ROS message is carried by a downstream product of HO(·) and that it is probably a product of phospholipid oxidation.
Insights
The study identifies the signaling reactive oxygen species (ROS) involved in heart protection. Results suggest a downstream product of hydroxyl radical (HO·), likely from phospholipid oxidation, carries the ROS signal, not hydrogen peroxide (H2O2).
Area of Science:
- Cardiovascular Physiology
- Mitochondrial Biology
- Biochemistry
Background:
- Mitochondria protect the heart via ATP-sensitive potassium channels (mitoKATP).
- mitoKATP opening involves reactive oxygen species (ROS) and PKCε activation.
- The specific signaling ROS in this process remains unidentified.
Purpose of the Study:
- To identify the endogenous signaling ROS responsible for mitoKATP channel opening and cardioprotection.
- To investigate the roles of superoxide (O2(·-)), hydrogen peroxide (H2O2), and hydroxyl radical (HO(·)) in this signaling pathway.
Main Methods:
- Utilized isolated respiring rat heart mitochondria preincubated with ATP and diazoxide.
- Tested agents that scavenge ROS or block ROS transformations to assess interference with mitoKATP persistent opening.
- Assayed mitochondria for the formation of the persistent phosphorylated open state.
Main Results:
- Dimethylsulfoxide (DMSO), dimethylformamide (DMF), deferoxamine, Trolox, and bromoenol lactone interfered with the ROS-dependent open state.
- Catalase did not interfere, excluding hydrogen peroxide (H2O2) as the signaling ROS.
- DMF inhibited both ischemic preconditioning and diazoxide-induced cardioprotection.
Conclusions:
- The signaling ROS is not H2O2.
- The ROS signal is likely a downstream product of hydroxyl radical (HO(·)).
- Phospholipid oxidation products are implicated as the likely signaling molecules.
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