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Updated: Jun 29, 2026

Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
Enhanced survival effect of pyruvate correlates MAPK and NF-kappaB activation in hydrogen peroxide-treated human
Yong-Jin Lee1, Il-Jun Kang, Rolf Bünger
1Division of Life Sciences and Silver Biotechnology Research Center, Hallym University, Chuncheon 200-702, Korea.
Abstract:
We recently reported that pyruvate inhibited translocation and activation of p53 caused by DNA damage due to oxidant injury (Lee YJ, Kang IJ, Bünger R, and Kang YH. Microvasc Res 66: 91-101, 2003); this was associated with increased expression of apoptosis-related bcl-2 and decreased expression of bax gene. This study attempted to delineate possible regulatory sites and mechanisms of antiapoptotic pyruvate, focusing on reactive oxygen species-mediated signaling in a human umbilical vein endothelial cell model. We compared the effects of the cytosolic reductant l-lactate and malate-aspartate shuttle blocker aminooxyacetate, both of which increase cytosolic NADH, on the downstream signaling pathway. Hydrogen peroxide (0.5 mM H2O2) depleted intracellular total glutathione that was prevented by pyruvate but not by l-lactate or aminooxyacetate. Activation of caspase-3 and the cleavage of procaspase-6 and procaspase-7 were strongly inhibited by pyruvate but markedly enhanced by l-lactate and aminooxyacetate, implicating redox-related antiapoptotic mechanisms of pyruvate. Western blot analysis and immunochemical data revealed that H2O2-induced transactivation of nuclear factor-kappaB (NF-kappaB) was also inhibited by pyruvate but not by l-lactate or aminooxyacetate. In addition, H2O2 downregulated extracellular signal-regulated kinase (ERK1/2) and phosphorylated p38 mitogen-activated protein kinase (MAPK), effects that were fully reversed by pyruvate within 2 h. Collectively, these findings indicate that pyruvate can protect cellular glutathione, thus enhancing cellular antioxidant potential, and that enhanced antioxidant potential can desensitize NF-kappaB transactivation due to reactive oxygen species, suggesting possible metabolic redox relations to NF-kappaB. Furthermore, pyruvate blocked the p38 MAPK pathway and activated the ERK pathway in an apparently redox-sensitive manner, which may regulate expression of genes believed to prevent apoptosis and promote cell survival. Thus pyruvate may have therapeutic potential for reducing endothelial dysfunction and improving survival during oxidative stress.
Insights
Pyruvate protects endothelial cells from oxidative stress by preserving glutathione and inhibiting apoptosis-related pathways. This suggests pyruvate
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Oxidative stress contributes to endothelial dysfunction and cell death.
- Pyruvate has previously shown potential in mitigating DNA damage-induced apoptosis.
- Understanding pyruvate's antiapoptotic mechanisms is crucial for therapeutic applications.
Purpose of the Study:
- To investigate the antiapoptotic mechanisms of pyruvate in human umbilical vein endothelial cells under oxidative stress.
- To delineate the role of reactive oxygen species (ROS)-mediated signaling pathways.
- To compare pyruvate's effects with other metabolic modulators like l-lactate and aminooxyacetate.
Main Methods:
- Cellular glutathione levels were measured.
- Apoptosis-related protein activation (caspase-3, procaspase-6, procaspase-7) was assessed.
- Western blot and immunochemical analyses were used to evaluate nuclear factor-kappaB (NF-kappaB) transactivation.
- Mitogen-activated protein kinase (MAPK) pathways (ERK1/2 and p38) were analyzed.
Main Results:
- Pyruvate prevented hydrogen peroxide-induced depletion of intracellular glutathione.
- Pyruvate inhibited caspase-3 activation and procaspase cleavage, while l-lactate and aminooxyacetate enhanced these.
- Pyruvate suppressed NF-kappaB transactivation induced by hydrogen peroxide.
- Pyruvate reversed hydrogen peroxide-induced downregulation of ERK1/2 and phosphorylation of p38 MAPK.
Conclusions:
- Pyruvate enhances cellular antioxidant potential by protecting glutathione, thereby desensitizing NF-kappaB to ROS.
- Pyruvate modulates MAPK pathways (p38 and ERK) in a redox-sensitive manner, potentially regulating cell survival genes.
- Pyruvate demonstrates therapeutic potential for reducing endothelial dysfunction and improving survival during oxidative stress.
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