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

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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