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PPARgamma inhibits NF-kappaB-dependent transcriptional activation in skeletal muscle
A H V Remels1, R C J Langen, H R Gosker
1Department of Respiratory Medicine, Maastricht University, P.O. Box 5800, 6202 AZ Maastricht, The Netherlands. a.remels@pul.unimaas.nl
Abstract:
Skeletal muscle pathology associated with a chronic inflammatory disease state (e.g., skeletal muscle atrophy and insulin resistance) is a potential consequence of chronic activation of NF-kappaB. It has been demonstrated that peroxisome proliferator-activated receptors (PPARs) can exert anti-inflammatory effects by interfering with transcriptional regulation of inflammatory responses. The goal of the present study, therefore, was to evaluate whether PPAR activation affects cytokine-induced NF-kappaB activity in skeletal muscle. Using C(2)C(12) myotubes as an in vitro model of myofibers, we demonstrate that PPAR, and specifically PPARgamma, activation potently inhibits inflammatory mediator-induced NF-kappaB transcriptional activity in a time- and dose-dependent manner. Furthermore, PPARgamma activation by rosiglitazone strongly suppresses cytokine-induced transcript levels of the NF-kappaB-dependent genes intracellular adhesion molecule 1 (ICAM-1) and CXCL1 (KC), the murine homolog of IL-8, in myotubes. To verify whether muscular NF-kappaB activity in human subjects is suppressed by PPARgamma activation, we examined the effect of 8 wk of rosiglitazone treatment on muscular gene expression of ICAM-1 and IL-8 in type 2 diabetes mellitus patients. In these subjects, we observed a trend toward decreased basal expression of ICAM-1 mRNA levels. Subsequent analyses in cultured myotubes revealed that the anti-inflammatory effect of PPARgamma activation is not due to decreased RelA translocation to the nucleus or reduced RelA DNA binding. These findings demonstrate that muscle-specific inhibition of NF-kappaB activation may be an interesting therapeutic avenue for treatment of several inflammation-associated skeletal muscle abnormalities.
Insights
Peroxisome proliferator-activated receptors (PPARs), particularly PPARgamma, inhibit inflammatory NF-kappaB activity in skeletal muscle. This suggests PPAR activation as a potential therapy for inflammation-related muscle conditions.
Area of Science:
- Muscle physiology and inflammation research.
- Molecular biology and therapeutic targets.
Background:
- Chronic inflammation and NF-kappaB activation can cause skeletal muscle pathology, including atrophy and insulin resistance.
- Peroxisome proliferator-activated receptors (PPARs) possess anti-inflammatory properties by modulating inflammatory gene transcription.
Purpose of the Study:
- To investigate if PPAR activation can suppress cytokine-induced NF-kappaB activity in skeletal muscle.
- To explore the therapeutic potential of PPAR activation in muscle inflammation.
Main Methods:
- Utilized C(2)C(12) myotubes as an in vitro model for skeletal muscle.
- Administered rosiglitazone to activate PPARgamma.
- Measured NF-kappaB transcriptional activity and gene expression (ICAM-1, CXCL1/KC, IL-8) in myotubes and in type 2 diabetes mellitus patients.
Main Results:
- PPARgamma activation potently inhibited NF-kappaB transcriptional activity in a time- and dose-dependent manner.
- Rosiglitazone suppressed cytokine-induced expression of NF-kappaB-dependent genes ICAM-1 and CXCL1 in myotubes.
- A trend toward decreased ICAM-1 mRNA was observed in type 2 diabetes patients treated with rosiglitazone.
Conclusions:
- PPARgamma activation effectively inhibits NF-kappaB activity in skeletal muscle.
- Muscle-specific inhibition of NF-kappaB via PPAR activation presents a promising therapeutic strategy for inflammation-associated skeletal muscle disorders.
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