4.7 Article

Protein kinase Cε interacts with and inhibits the permeability transition pore in cardiac mitochondria

期刊

CIRCULATION RESEARCH
卷 92, 期 8, 页码 873-880

出版社

LIPPINCOTT WILLIAMS & WILKINS
DOI: 10.1161/01.RES.0000069215.36389.8D

关键词

mitochondria; signal transduction; permeability transition pore; cardioprotection

资金

  1. NHLBI NIH HHS [R01 HL065431, R37 HL063901, R01 HL068088, R01 HL043151, HL-43151, HL-63901, R01 HL055757, R01 HL063901] Funding Source: Medline
  2. PHS HHS [55757, 68088, 65431] Funding Source: Medline

向作者/读者索取更多资源

Although functional coupling between protein kinase Cepsilon (PKCepsilon) and mitochondria has been implicated in the genesis of cardioprotection, the signal transduction mechanisms that enable this link and the identities of the mitochondrial proteins modulated by PKCepsilon remain unknown. Based on recent evidence that the mitochondrial permeability transition pore may be involved in ischemia/reperfusion injury, we hypothesized that protein-protein interactions between PKCepsilon and mitochondrial pore components may serve as a signaling mechanism to modulate pore function and thus engender cardioprotection. Coimmunoprecipitation and GST-based affinity pull-down from mouse cardiac mitochondria revealed interaction of PKCepsilon with components of the pore, namely voltage-dependent anion channel (VDAC), adenine nucleotide translocase (ANT), and hexokinase II (HKII). VDAC1, ANT1, and HKII were present in the PKCepsilon complex at approximate to2%, approximate to0.2%, and approximate to1% of their total expression, respectively. Moreover, in vitro studies demonstrated that PKCepsilon can directly bind and phosphorylate VDAC1. Incubation of isolated cardiac mitochondria with recombinant PKCepsilon resulted in a significant inhibition of Ca2+-induced mitochondrial swelling, an index of pore opening. Furthermore, cardiac-specific expression of active PKCepsilon in mice, which is cardioprotective, greatly increased interaction of PKCepsilon with the pore components and inhibited Ca2+-induced pore opening. In contrast, cardiac expression of kinase-inactive PKCepsilon did not affect pore opening. Finally, administration of the pore opener atractyloside significantly attenuated the infarct-sparing effect of PKCepsilon transgenesis. Collectively, these data demonstrate that PKCepsilon forms physical interactions with components of the cardiac mitochondrial pore. This in turn inhibits the pathological function of the pore and contributes to PKCepsilon-induced cardioprotection.

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