Attenuation of the hypoxia-induced protein kinase Cδ interaction with the 'd' subunit of F1Fo-ATP synthase in neonatal cardiac myocytes: Implications for energy preservation and survival
- Tiffany T. Nguyen,
- Mourad Ogbi,
- Qilin Yu,
- John A. Johnson
Sustainable Development Goals
- SDG 3 Good Health and Well
Abstract
The F1Fo-ATP synthase provides most of the heart's energy, yet events that alter its function during injury are poorly understood. Recently, we described a potent inhibitory effect on F1F o-ATP synthase function mediated by the interaction of PKCδ (protein kinase Cδ) with dF1Fo ('d' subunit of the F1Fo-ATPase/ATP synthase). We have now developed novel peptide modulators which facilitate or inhibit the PKCδ-dF 1Fo interaction. These peptides include HIV-Tat (transactivator of transcription) protein transduction and mammalian mitochondrial-targeting sequences. Pre-incubation of NCMs (neonatal cardiac myocyte) with 10 nM extracellular concentrations of the mitochondrial-targeted PKCδ-dF1Fo interaction inhibitor decreased Hx (hypoxia)-induced co-IP (co-immunoprecipitation) of PKCδ with dF 1Fo by 40±9%, abolished Hx-induced inhibition of F1Fo-ATPase activity, attenuated Hx-induced losses in F1Fo-derived ATP and protected against Hx- and reperfusion-induced cell death. A scrambled-sequence (inactive) peptide, which contained HIV-Tat and mitochondrial-targeting sequences, was without effect. In contrast, the cell-permeant mitochondrial-targeted PKCδ-dF 1Fo facilitator peptide, which we have shown previously to induce the PKCδ-dF1Fo co-IP, was found to inhibit F1Fo-ATPase activity to an extent similar to that caused by Hx alone. The PKCδ-dF1Fo facilitator peptide also decreased ATP levels by 72±18% under hypoxic conditions in the presence of glycolytic inhibition. None of the PKCδ-dF1Fo modulatory peptides altered the inner mitochondrial membrane potential. Our studies provide the first evidence that disruption of the PKCδ-dF 1Fo interaction using cell-permeant mitochondrial-targeted peptides attenuates cardiac injury resulting from prolonged oxygen deprivation.
Publication Information
Output type
Original language
English (US)Pages from-to (Number of pages)
Pages 335-345 (11 pages)Journal (Volume, Issue Number)
Biochemical Journal (Volume 429, Issue 2)Publication milestones
- Published - 07/15/2010
Publication status
ISSN
0264-6021Publication IDs
- Scopus: 77954733228
- PubMed: 20578995
