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Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
Protein kinase C-epsilon activation induces mitochondrial dysfunction and fragmentation in renal proximal tubules
Grazyna Nowak1, Diana Bakajsova, Allen M Samarel
1University of Arkansas for Medical Sciences, Dept. of Pharmaceutical Sciences, 4301 West Markham St., Little Rock, AR 72205, USA. gnowak@uams.edu
Abstract:
PKC-ε activation mediates protection from ischemia-reperfusion injury in the myocardium. Mitochondria are a subcellular target of these protective mechanisms of PKC-ε. Previously, we have shown that PKC-ε activation is involved in mitochondrial dysfunction in oxidant-injured renal proximal tubular cells (RPTC; Nowak G, Bakajsova D, Clifton GL Am J Physiol Renal Physiol 286: F307-F316, 2004). The goal of this study was to examine the role of PKC-ε activation in mitochondrial dysfunction and to identify mitochondrial targets of PKC-ε in RPTC. The constitutively active and inactive mutants of PKC-ε were overexpressed in primary cultures of RPTC using the adenoviral technique. Increases in active PKC-ε levels were accompanied by PKC-ε translocation to mitochondria. Sustained PKC-ε activation resulted in decreases in state 3 respiration, electron transport rate, ATP production, ATP content, and activities of complexes I and IV and F(0)F(1)-ATPase. Furthermore, PKC-ε activation increased mitochondrial membrane potential and oxidant production and induced mitochondrial fragmentation and RPTC death. Accumulation of the dynamin-related protein in mitochondria preceded mitochondrial fragmentation. Antioxidants blocked PKC-ε-induced increases in the oxidant production but did not prevent mitochondrial fragmentation and cell death. The inactive PKC-ε mutant had no effect on mitochondrial functions, morphology, oxidant production, and RPTC viability. We conclude that active PKC-ε targets complexes I and IV and F(0)F(1)-ATPase in RPTC. PKC-ε activation mediates mitochondrial dysfunction, hyperpolarization, and fragmentation. It also induces oxidant generation and cell death, but oxidative stress is not the mechanism of RPTC death. These results show that in contrast to protective effects of PKC-ε activation in cardiomyocytes, sustained PKC-ε activation is detrimental to mitochondrial function and viability in RPTC.
Insights
Protein kinase C-epsilon (PKC-ε) activation damages renal proximal tubular cells (RPTC) by impairing mitochondrial function and causing cell death. This contrasts with its protective role in heart cells, highlighting cell-specific effects of PKC-ε.
Area of Science:
- Cell Biology
- Biochemistry
- Renal Physiology
Background:
- Protein kinase C-epsilon (PKC-ε) activation is known to protect cardiomyocytes from ischemia-reperfusion injury.
- Previous studies indicated PKC-ε activation's involvement in mitochondrial dysfunction in oxidant-injured renal proximal tubular cells (RPTC).
- The specific role and targets of PKC-ε in RPTC mitochondria remained unclear.
Purpose of the Study:
- To investigate the role of PKC-ε activation in mitochondrial dysfunction within RPTC.
- To identify specific mitochondrial targets affected by PKC-ε activation in RPTC.
Main Methods:
- Overexpression of constitutively active and inactive PKC-ε mutants in primary RPTC cultures using adenoviral vectors.
- Assessment of mitochondrial function, including respiration, ATP production, and enzyme activities (Complexes I, IV, F(0)F(1)-ATPase).
- Analysis of mitochondrial morphology, membrane potential, oxidant production, and RPTC viability.
Main Results:
- Sustained PKC-ε activation led to decreased mitochondrial respiration, electron transport, ATP production, and activities of Complexes I, IV, and F(0)F(1)-ATPase.
- PKC-ε activation increased mitochondrial membrane potential, oxidant production, induced mitochondrial fragmentation, and RPTC death.
- Antioxidants mitigated oxidant production but not fragmentation or cell death, indicating oxidative stress is not the primary cause of RPTC death.
Conclusions:
- Active PKC-ε directly targets mitochondrial Complexes I, IV, and F(0)F(1)-ATPase in RPTC.
- PKC-ε activation causes mitochondrial dysfunction, hyperpolarization, fragmentation, and RPTC death, independent of oxidative stress.
- Unlike its protective role in cardiomyocytes, sustained PKC-ε activation is detrimental to mitochondrial function and viability in RPTC.
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