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Trans-10, cis-12-conjugated linoleic acid modulates NF-κB activation and TNF-α production in porcine peripheral blood mononuclear cells via a PPARγ-dependent pathway

Published online by Cambridge University Press:  23 December 2010

Dong-In Kim
Affiliation:
Laboratory of Veterinary Internal Medicine, Department of Veterinary Medicine, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Keun-Hwa Kim
Affiliation:
Laboratory of Veterinary Internal Medicine, Department of Veterinary Medicine, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Ji-Houn Kang
Affiliation:
Laboratory of Veterinary Internal Medicine, Department of Veterinary Medicine, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Eui-Man Jung
Affiliation:
Laboratory of Veterinary Biochemistry and Molecular Biology, Department of Veterinary Medicine, College of Veterinary Medicine and Research Institute of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Sung-Soo Kim
Affiliation:
Laboratory of Veterinary Internal Medicine, Department of Veterinary Medicine, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Eui-Bae Jeung
Affiliation:
Laboratory of Veterinary Biochemistry and Molecular Biology, Department of Veterinary Medicine, College of Veterinary Medicine and Research Institute of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
Mhan-Pyo Yang*
Affiliation:
Laboratory of Veterinary Internal Medicine, Department of Veterinary Medicine, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungbuk361-763, Republic of Korea
*
*Corresponding author: Professor M.-P. Yang, fax +82 43 261 3224, email mpyang@chungbuk.ac.kr
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Abstract

The activation of PPARγ by ligands, including conjugated linoleic acid (CLA) isomers, plays an important role in the immune response. Among CLA isomers, trans-10, cis-12 (t10c12)-CLA is known to participate in the modulation of pro-inflammatory cytokine secretion. The aim of the present study was to assess the effect of t10c12-CLA on PPARγ activation, NF-κB activation and TNF-α expression in lipopolysaccharide (LPS)-naive and LPS-stimulated porcine peripheral blood mononuclear cells (PBMC). In addition, the effect of PPARγ inhibition on NF-κB activation and TNF-α expression in porcine PBMC was examined. t10c12-CLA was found to increase TNF-α expression and NF-κB activity in LPS-naive porcine PBMC. In contrast, t10c12-CLA decreased TNF-α expression and NF-κB activity in LPS-stimulated porcine PBMC. t10c12-CLA up-regulated PPARγ activity and mRNA expression in both LPS-naive and LPS-stimulated porcine PBMC. GW9662, a PPARγ antagonist, completely negated the modulating effects of t10c12-CLA on TNF-α expression and NF-κB activity in both LPS-naive and LPS-stimulated porcine PBMC. These results suggest that t10c12-CLA can modulate TNF-α production and NF-κB activation by a PPARγ-dependent pathway in porcine PBMC.

Information

Type
Full Papers
Copyright
Copyright © The Authors 2010
Figure 0

Fig. 1 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on PPARγ activation in porcine peripheral blood mononuclear cells (PBMC). (A) Porcine PBMC (2 × 106 cells/ml) were incubated with t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm), a PPARγ antagonist, for 24 h. PPARγ activity was measured in nuclear extracts using an ELISA-based TransAM® PPARγ transcription factor assay kit, as described in the Materials and methods section. (B) RT-PCR analysis of PPARγ mRNA expression in porcine PBMC treated with t10c12-CLA (10 μm) or t10c12-CLA in combination with GW9662 (1 μm) for 1 h (a). PPARγ mRNA expression was normalised with 1A (b). Signals were quantified with a molecular analysis program and were expressed as a percentage of the vehicle value (c). Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle group: * P < 0·05 (one-way ANOVA); † P < 0·05 (as determined by the two-sample t test). OD, optical density.

Figure 1

Fig. 2 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on NF-κB activation in porcine peripheral blood mononuclear cells (PBMC). Porcine PBMC (2 × 106 cells/ml) were incubated with t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 24 h. NF-κB p65 activation was assayed in nuclear extracts using an ELISA-based TransAM® NF-κB p65 transcription factor assay kit, as described in the Materials and methods section. Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle group: ** P < 0·01 (one-way ANOVA); † P < 0·05 (as determined by the two-sample t test). OD, optical density.

Figure 2

Fig. 3 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on TNF-α expression in porcine peripheral blood mononuclear cells (PBMC). (A) Porcine PBMC (2 × 106 cells/ml) were incubated with t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 24 h. The concentration (pg/ml) of TNF-α in the culture supernatant from porcine PBMC was measured by ELISA. (B) RT-PCR analysis of TNF-α mRNA expression in porcine PBMC treated with t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 1 h (a). TNF-α mRNA expression was normalised with 1A (b). Signals were quantified with a molecular analysis program and were expressed as a percentage of the vehicle value (c). Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle group: * P < 0·05, ** P < 0·01 (one-way ANOVA); †† P < 0·01, ††† P < 0·001 (as determined by the two-sample t test).

Figure 3

Fig. 4 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on PPARγ activation in lipopolysaccharide (LPS)-stimulated porcine peripheral blood mononuclear cells (PBMC). (A) Porcine PBMC (2 × 106 cells/ml) were treated with LPS (1 μg/ml) and t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 24 h. PPARγ activity was assayed in nuclear extracts using an ELISA-based TransAM® PPARγ transcription factor assay kit, as described in the Materials and methods section. (B) RT-PCR analysis of PPARγ mRNA expression in porcine PBMC treated with LPS (1 μg/ml) and t10c12-CLA (10 μm) or t10c12-CLA (10 μm) plus GW9662 (1 μm) for 1 h (a). PPARγ mRNA expression was normalised with 1A (b). Signals were quantified with a molecular analysis program and were expressed as a percentage of the vehicle value (c). Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle plus LPS group: ** P < 0·01, *** P < 0·001 (one-way ANOVA); †† P < 0·01, ††† P < 0·001 (as determined by the two-sample t test). OD, optical density.

Figure 4

Fig. 5 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on NF-κB activation in lipopolysaccharide (LPS)-stimulated porcine peripheral blood mononuclear cells (PBMC). Porcine PBMC (2 × 106 cells/ml) were treated with LPS (1 μg/ml) and t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 24 h. NF-κB activity was assayed in nuclear extracts using an ELISA-based TransAM® NF-κB p65 transcription factor assay kit, as described in the Materials and methods section. Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle plus LPS group: ** P < 0·01 (one-way ANOVA); †† P < 0·01 (as determined by the two-sample t test). OD, optical density.

Figure 5

Fig. 6 The effect of trans-10, cis-12-conjugated linoleic acid (t10c12-CLA) on TNF-α expression in lipopolysaccharides (LPS)-stimulated porcine peripheral blood mononuclear cells (PBMC). (A) Porcine PBMC (2 × 106 cells/ml) were treated with LPS (1 μg/ml) and t10c12-CLA (10 μm) or t10c12-CLA (10 μm) in combination with GW9662 (1 μm) for 24 h. The concentration (pg/ml) of TNF-α in the culture supernatant from porcine PBMC was measured by ELISA. (B) RT-PCR analysis of TNF-α mRNA expression in porcine PBMC treated with LPS (1 μg/ml) and t10c12-CLA (10 μm) or t10c12-CLA (10 μm) plus GW9662 (1 μm) for 1 h (a). TNA-α mRNA expression was normalised with 1A (b). Signals were quantified with a molecular analysis program and were expressed as a percentage of the vehicle value (c). Values are means, with standard deviations represented by vertical bars (n 3). Mean values were significantly different from that of the vehicle plus LPS group: * P < 0·05, *** P < 0·001 (one-way ANOVA); † P < 0·05 (as determined by the two-sample t test).