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Published on: June 3, 2018
Nuclear factor-kappaB activation leads to down-regulation of fatty acid oxidation during cardiac hypertrophy
Anna Planavila1, Juan C Laguna, Manuel Vázquez-Carrera
1Pharmacology Unit, Department of Pharmacology and Therapeutic Chemistry, Faculty of Pharmacy, University of Barcelona, E-08028 Barcelona, Spain.
Abstract:
Little is known about the mechanisms responsible for the fall in fatty acid oxidation during the development of cardiac hypertrophy. We focused on the effects of nuclear factor (NF)-kappaB activation during cardiac hypertrophy on the activity of peroxisome proliferator-activated receptor (PPAR) beta/delta, which is the predominant PPAR subtype in cardiac cells and plays a prominent role in the regulation of cardiac lipid metabolism. Phenylephrine-induced cardiac hypertrophy in neonatal rat cardiomyocytes caused a reduction in the expression of pyruvate dehydrogenase kinase 4 (Pdk4), a target gene of PPARbeta/delta involved in fatty acid utilization, and a fall in palmitate oxidation that was reversed by NF-kappaB inhibitors. Lipopolysaccharide stimulation of NF-kappaB in embryonic rat heart-derived H9c2 myotubes, which only express PPARbeta/delta, caused both a reduction in Pdk4 expression and DNA binding activity of PPARbeta/delta to its response element, effects that were reversed by NF-kappaB inhibitors. Coimmunoprecipitation studies demonstrated that lipopolysaccharide strongly stimulated the physical interaction between the p65 subunit of NF-kappaB and PPARbeta/delta, providing an explanation for the reduced activity of PPARbeta/delta. Finally, we assessed whether this mechanism was present in vivo in pressure overload-induced cardiac hypertrophy. In hypertrophied hearts of banded rats the reduction in the expression of Pdk4 was accompanied by activation of NF-kappaB and enhanced interaction between p65 and PPARbeta/delta. These results indicate that NF-kappaB activation during cardiac hypertrophy down-regulates PPARbeta/delta activity, leading to a fall in fatty acid oxidation, through a mechanism that involves enhanced protein-protein interaction between the p65 subunit of NF-kappaB and PPARbeta/delta.
Insights
Nuclear factor-kappaB activation in cardiac hypertrophy reduces fatty acid oxidation by inhibiting peroxisome proliferator-activated receptor beta/delta activity. This interaction impairs lipid metabolism in heart cells, impacting cardiac function.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Metabolic Regulation
Background:
- Cardiac hypertrophy involves altered cardiac lipid metabolism, but the underlying mechanisms remain unclear.
- Peroxisome proliferator-activated receptor beta/delta (PPARbeta/delta) is crucial for cardiac lipid metabolism.
- Nuclear factor-kappaB (NF-kappaB) activation is implicated in cardiac hypertrophy.
Purpose of the Study:
- To investigate the role of NF-kappaB activation in regulating PPARbeta/delta activity during cardiac hypertrophy.
- To elucidate the impact of this interaction on fatty acid oxidation in cardiac cells.
Main Methods:
- Utilized phenylephrine-induced cardiac hypertrophy in neonatal rat cardiomyocytes and lipopolysaccharide stimulation in H9c2 myotubes.
- Assessed expression of PPARbeta/delta target gene pyruvate dehydrogenase kinase 4 (Pdk4) and palmitate oxidation rates.
- Employed NF-kappaB inhibitors, coimmunoprecipitation, and in vivo studies in pressure overload-induced cardiac hypertrophy models (banded rats).
Main Results:
- NF-kappaB activation reduced Pdk4 expression and palmitate oxidation in cardiomyocytes and H9c2 cells.
- NF-kappaB inhibition reversed these effects, indicating NF-kappaB's inhibitory role.
- NF-kappaB directly interacted with PPARbeta/delta, reducing its DNA binding activity and leading to decreased fatty acid oxidation in vitro and in vivo.
Conclusions:
- NF-kappaB activation during cardiac hypertrophy down-regulates PPARbeta/delta activity.
- This inhibition occurs via enhanced protein-protein interaction between NF-kappaB p65 subunit and PPARbeta/delta.
- The mechanism contributes to the fall in cardiac fatty acid oxidation observed in hypertrophy.
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