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Diazoxide acts more as a PKC-epsilon activator, and indirectly activates the mitochondrial K(ATP) channel conferring cardioprotection against hypoxic injury.

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dc.contributor.authorKim, MY-
dc.contributor.authorKim, MJ-
dc.contributor.authorYoon, IS-
dc.contributor.authorAhn, JH-
dc.contributor.authorLee, SH-
dc.contributor.authorBaik, EJ-
dc.contributor.authorMoon, CH-
dc.contributor.authorJung, YS-
dc.date.accessioned2011-03-22T05:59:33Z-
dc.date.available2011-03-22T05:59:33Z-
dc.date.issued2006-
dc.identifier.issn0007-1188-
dc.identifier.urihttp://repository.ajou.ac.kr/handle/201003/1875-
dc.description.abstractBACKGROUND AND PURPOSE: Diazoxide, a well-known opener of the mitochondrial ATP-sensitive potassium (mitoK(ATP)) channel, has been demonstrated to exert cardioprotective effect against ischemic injury through the mitoK(ATP) channel and protein kinase C (PKC). We aimed to clarify the role of PKC isoforms and the relationship between the PKC isoforms and the mitoK(ATP) channel in diazoxide-induced cardioprotection.



EXPERIMENTAL APPROACH: In H9c2 cells and neonatal rat cardiomyocytes, PKC-epsilon activation was examined by Western blotting and kinase assay. Flavoprotein fluorescence, mitochondrial Ca(2+) and mitochondrial membrane potential were measured by confocal microscopy. Cell death was determined by TUNEL assay.



KEY RESULTS: Diazoxide (100 microM) induced translocation of PKC-epsilon from the cytosolic to the mitochondrial fraction. Specific blockade of PKC-epsilon by either epsilonV1-2 or dominant negative mutant PKC-epsilon (PKC-epsilon KR) abolished the anti-apoptotic effect of diazoxide. Diazoxide-induced flavoprotein oxidation was inhibited by either epsilonV1-2 or PKC-epsilon KR transfection. Treatment with 5-hydroxydecanoate (5-HD) did not affect translocation and activation of PKC-epsilon induced by diazoxide. Transfection with wild type PKC-epsilon mimicked the flavoprotein-oxidizing effect of diazoxide, and this effect was completely blocked by epsilonV1-2 or 5-HD. Diazoxide prevented the increase in mitochondrial Ca(2+), mitochondrial depolarization and cytochrome c release induced by hypoxia and all these effects of diazoxide were blocked by epsilonV1-2 or 5-HD.



CONCLUSIONS AND IMPLICATIONS: Diazoxide induced isoform-specific translocation of PKC-epsilon as an upstream signaling molecule for the mitoK(ATP) channel, rendering cardiomyocytes resistant to hypoxic injury through inhibition of the mitochondrial death pathway.
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dc.language.isoen-
dc.subject.MESHAnimals-
dc.subject.MESHAnoxia-
dc.subject.MESHAntihypertensive Agents-
dc.subject.MESHBlotting, Western-
dc.subject.MESHCalcium-
dc.subject.MESHCardiotonic Agents-
dc.subject.MESHCell Line-
dc.subject.MESHCytosol-
dc.subject.MESHDiazoxide-
dc.subject.MESHEnzyme Activators-
dc.subject.MESHFlavoproteins-
dc.subject.MESHIn Situ Nick-End Labeling-
dc.subject.MESHMembrane Potentials-
dc.subject.MESHMitochondria, Heart-
dc.subject.MESHMyocytes, Cardiac-
dc.subject.MESHPlasmids-
dc.subject.MESHPotassium Channels, Inwardly Rectifying-
dc.subject.MESHProtein Kinase C-epsilon-
dc.subject.MESHRats-
dc.subject.MESHRats, Sprague-Dawley-
dc.subject.MESHTransfection-
dc.titleDiazoxide acts more as a PKC-epsilon activator, and indirectly activates the mitochondrial K(ATP) channel conferring cardioprotection against hypoxic injury.-
dc.typeArticle-
dc.identifier.pmid17043673-
dc.identifier.urlhttps://www.ncbi.nlm.nih.gov/pmc/articles/PMC2014640/-
dc.contributor.affiliatedAuthor이, 수환-
dc.contributor.affiliatedAuthor백, 은주-
dc.contributor.affiliatedAuthor문, 창현-
dc.contributor.affiliatedAuthor정, 이숙-
dc.type.localJournal Papers-
dc.identifier.doi10.1038/sj.bjp.0706922-
dc.citation.titleBritish journal of pharmacology-
dc.citation.volume149-
dc.citation.number8-
dc.citation.date2006-
dc.citation.startPage1059-
dc.citation.endPage1070-
dc.identifier.bibliographicCitationBritish journal of pharmacology, 149(8). : 1059-1070, 2006-
dc.identifier.eissn1476-5381-
dc.relation.journalidJ000071188-
Appears in Collections:
Journal Papers > School of Medicine / Graduate School of Medicine > Physiology
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