Increased reactive oxygen species production down-regulates peroxisome proliferator-activated alpha pathway in C2C12
Agatha Cabrero1, Marta Alegret, Rosa M Sanchez
1Unitat de Farmacologia, Departament de Farmacologia i Quimica Terapèutica, Facultat de Farmàcia, Universitat de Barcelona, E-08028 Barcelona, Spain.
Abstract:
Generation of reactive oxygen species may contribute to the pathogenesis of diseases involving intracellular lipid accumulation. To explore the mechanisms leading to these pathologies we tested the effects of etomoxir, an inhibitor of carnitine palmitoyltransferase I which contains a fatty acid-derived structure, in C2C12 skeletal muscle cells. Etomoxir treatment for 24 h resulted in a down-regulation of peroxisome proliferator-activated receptor alpha (PPARalpha) mRNA expression, achieving an 87% reduction at 80 microm etomoxir. The mRNA levels of most of the PPARalpha target genes studied were reduced at 100 microm etomoxir. By using several inhibitors of de novo ceramide synthesis and C(2)-ceramide we showed that they were not involved in the effects of etomoxir. Interestingly, the addition of triacsin C, a potent inhibitor of acyl-CoA synthetase, to etomoxir-treated C2C12 skeletal muscle cells did not prevent the down-regulation in PPARalpha mRNA levels, suggesting that the active form of the drug, etomoxir-CoA, was not involved. Given that saturated fatty acids may generate reactive oxygen species (ROS), we determined whether the addition of etomoxir resulted in ROS generation. Etomoxir increased ROS production and the activity of the well known redox transcription factor NF-kappaB. In the presence of the pyrrolidine dithiocarbamate, a potent antioxidant and inhibitor of NF-kappaB activity, etomoxir did not down-regulate PPARalpha mRNA in C2C12 skeletal muscle cells. These results indicate that ROS generation and NF-kappaB activation are responsible for the down-regulation of PPARalpha and may provide a new mechanism by which intracellular lipid accumulation occurs in skeletal muscle cells.
Insights
Etomoxir increases reactive oxygen species (ROS) and NF-kappaB activity, leading to reduced PPARalpha expression in muscle cells. This suggests a novel mechanism for intracellular lipid accumulation in skeletal muscle diseases.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Intracellular lipid accumulation is linked to diseases involving reactive oxygen species (ROS).
- Understanding the mechanisms of these pathologies is crucial for developing therapeutic strategies.
Purpose of the Study:
- To investigate the effects of etomoxir, a carnitine palmitoyltransferase I inhibitor, on C2C12 skeletal muscle cells.
- To elucidate the role of ROS and NF-kappaB in etomoxir-induced changes in PPARalpha expression.
Main Methods:
- Treatment of C2C12 cells with etomoxir and various inhibitors (ceramide synthesis inhibitors, triacsin C, pyrrolidine dithiocarbamate).
- Measurement of peroxisome proliferator-activated receptor alpha (PPARalpha) mRNA levels.
- Assessment of reactive oxygen species (ROS) production and NF-kappaB activity.
Main Results:
- Etomoxir down-regulated PPARalpha mRNA expression in a dose-dependent manner.
- Etomoxir increased ROS production and NF-kappaB activity.
- Inhibition of ROS and NF-kappaB prevented etomoxir-induced PPARalpha down-regulation.
Conclusions:
- ROS generation and subsequent NF-kappaB activation are responsible for the down-regulation of PPARalpha by etomoxir.
- This pathway provides a potential mechanism for intracellular lipid accumulation in skeletal muscle cells.
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