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Intramitochondrial signaling: interactions among mitoKATP, PKCepsilon, ROS, and MPT
Alexandre D T Costa1, Keith D Garlid
1Dept. of Biology, Portland State Univ., PO Box 751, Portland, OR 97201-0751, USA.
Abstract:
Activation of protein kinase Cepsilon (PKCepsilon), opening of mitochondrial ATP-sensitive K(+) channels (mitoK(ATP)), and increased mitochondrial reactive oxygen species (ROS) are key events in the signaling that underlies cardioprotection. We showed previously that mitoK(ATP) is opened by activation of a mitochondrial PKCepsilon, designated PKCepsilon1, that is closely associated with mitoK(ATP). mitoK(ATP) opening then causes an increase in ROS production by complex I of the respiratory chain. This ROS activates a second pool of PKCepsilon, designated PKCepsilon2, which inhibits the mitochondrial permeability transition (MPT). In the present study, we measured mitoK(ATP)-dependent changes in mitochondrial matrix volume to further investigate the relationships among PKCepsilon, mitoK(ATP), ROS, and MPT. We present evidence that 1) mitoK(ATP) can be opened by H(2)O(2) and nitric oxide (NO) and that these effects are mediated by PKCepsilon1 and not by direct actions on mitoK(ATP), 2) superoxide has no effect on mitoK(ATP) opening, 3) exogenous H(2)O(2) or NO also inhibits MPT opening, and both compounds do so independently of mitoK(ATP) activity via activation of PKCepsilon2, 4) mitoK(ATP) opening induced by PKG, phorbol ester, or diazoxide is not mediated by ROS, and 5) mitoK(ATP)-generated ROS activates PKCepsilon1 and induces phosphorylation-dependent mitoK(ATP) opening in vitro and in vivo. Thus mitoK(ATP)-dependent mitoK(ATP) opening constitutes a positive feedback loop capable of maintaining the channel open after the stimulus is no longer present. This feedback pathway may be responsible for the lasting protective effect of preconditioning, colloquially known as the memory effect.
Insights
Mitochondrial ATP-sensitive K(+) channels (mitoK(ATP)) opening involves protein kinase Cepsilon (PKCepsilon) and reactive oxygen species (ROS). A positive feedback loop of mitoK(ATP)-generated ROS sustains channel opening, potentially explaining preconditioning
Area of Science:
- Cardiovascular Physiology
- Mitochondrial Biology
- Cell Signaling
Background:
- Protein kinase Cepsilon (PKCepsilon), mitochondrial ATP-sensitive K(+) channels (mitoK(ATP)), and reactive oxygen species (ROS) are crucial for cardioprotection.
- Previous work identified mitochondrial PKCepsilon1 opening mitoK(ATP), leading to ROS production that activates PKCepsilon2, inhibiting the mitochondrial permeability transition (MPT).
Purpose of the Study:
- To investigate the intricate relationships among PKCepsilon, mitoK(ATP), ROS, and MPT.
- To elucidate the role of ROS and nitric oxide (NO) in mitoK(ATP) channel regulation.
Main Methods:
- Measurement of mitoK(ATP)-dependent changes in mitochondrial matrix volume.
- Assessing the effects of hydrogen peroxide (H2O2), NO, and superoxide on mitoK(ATP) and MPT.
- Investigating ROS-independent mitoK(ATP) opening mechanisms.
Main Results:
- H2O2 and NO open mitoK(ATP) via PKCepsilon1; superoxide has no effect.
- Exogenous H2O2 and NO inhibit MPT through PKCepsilon2, independent of mitoK(ATP).
- PKCepsilon1 activation by mitoK(ATP)-generated ROS induces phosphorylation-dependent mitoK(ATP) opening, creating a positive feedback loop.
Conclusions:
- A positive feedback loop involving mitoK(ATP)-generated ROS and PKCepsilon1 sustains mitoK(ATP) opening.
- This feedback mechanism may underlie the long-lasting cardioprotective effects of preconditioning, often termed the 'memory effect'.
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