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The ethanolamide metabolite of DHA, docosahexaenoylethanolamine, shows immunomodulating effects in mouse peritoneal and RAW264.7 macrophages: evidence for a new link between fish oil and inflammation

Published online by Cambridge University Press:  04 February 2011

Jocelijn Meijerink*
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Pierluigi Plastina
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Jean-Paul Vincken
Affiliation:
Laboratory of Food Chemistry, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Mieke Poland
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Mohamed Attya
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Michiel Balvers
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands TNO Quality of Life, PO Box 360, 3700AJZeist, The Netherlands
Harry Gruppen
Affiliation:
Laboratory of Food Chemistry, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands
Bartolo Gabriele
Affiliation:
Dipartimento di Scienze Farmaceutiche, Università della Calabria, 87036, Arcavacata di Rende, Cosenza, Italy
Renger F. Witkamp
Affiliation:
Division of Human Nutrition, Wageningen University, PO Box 8129, 6700EV, Wageningen, The Netherlands TNO Quality of Life, PO Box 360, 3700AJZeist, The Netherlands
*
*Corresponding author: J. Meijerink, fax +31 317 483342, email jocelijn.meijerink@wur.nl
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Abstract

Several mechanisms have been proposed for the positive health effects associated with dietary consumption of long-chain n-3 PUFA (n-3 LC-PUFA) including DHA (22 : 6n-3) and EPA (20 : 5n-3). After dietary intake, LC-PUFA are incorporated into membranes and can be converted to their corresponding N-acylethanolamines (NAE). However, little is known on the biological role of these metabolites. In the present study, we tested a series of unsaturated NAE on the lipopolysaccharide (LPS)-induced NO production in RAW264.7 macrophages. Among the compounds tested, docosahexaenoylethanolamine (DHEA), the ethanolamide of DHA, was found to be the most potent inhibitor, inducing a dose-dependent inhibition of NO release. Immune-modulating properties of DHEA were further studied in the same cell line, demonstrating that DHEA significantly suppressed the production of monocyte chemotactic protein-1 (MCP-1), a cytokine playing a pivotal role in chronic inflammation. In LPS-stimulated mouse peritoneal macrophages, DHEA also reduced MCP-1 and NO production. Furthermore, inhibition was also found to take place at a transcriptional level, as gene expression of MCP-1 and inducible NO synthase was inhibited by DHEA. To summarise, in the present study, we showed that DHEA, a DHA-derived NAE metabolite, modulates inflammation by reducing MCP-1 and NO production and expression. These results provide new leads in molecular mechanisms by which DHA can modulate inflammatory processes.

Information

Type
Full Papers
Copyright
Copyright © The Authors 2011
Figure 0

Table 1 Names of a series of N-acylethanolamines tested for their ability to inhibit nitric oxide production

Figure 1

Fig. 1 Efficacy of a series of N-acylethanolamines to inhibit lipopolysaccharide (LPS)-induced nitric oxide release in RAW264.7 macrophages at 24 h. Efficacies were compared with nitric oxide-reducing effects of the precursor DHA. All compounds were tested at a dose of 10 μm. RAW264.7 macrophages were seeded at a density of 250 000 cells/ml and pre-incubated for 30 min with the respective ligands preceding a 24 h LPS (1 μg/ml) stimulation, in the presence of the particular ligand. Protein content of each well was determined by a bicinchoninic acid assay. Data are expressed as percentage, where LPS stimulation (containing vehicle) was set at 100 %. Average absolute value for nitrite production with LPS stimulation (control) after 24 h was approximately 16 μm. Values are means of four separate experiments (each done in duplicate), with standard errors of the mean represented by vertical bars. Mean values were significantly different from 100 %: **P < 0·01, ***P < 0·001. OEA, oleoylethanolamine; LEA, linoleoylethanolamine; CLEA, conjugated linoleoylethanolamine; LNEA, linolenoylethanolamine; AEA, arachidonoylethanolamine; EPEA, eicosapentaenoylethanolamine; DEA, docosatetraenoylethanolamine; DHEA, docosahexaenoylethanolamine.

Figure 2

Fig. 2 Dose–response graphs of lipopolysaccharide (LPS)-induced nitric oxide reduction elicited by a series of N-acylethanolamines and DHA in RAW264.7 macrophages. Compounds were tested in a concentration range of 0·01–10 μm. RAW264.7 macrophages were seeded at a density of 250 000 cells/ml and pre-incubated for 30 min with the respective ligands before a 48 h LPS (1 μg/ml) stimulation, in the presence of the particular ligand. The protein content of each well was determined by a bicinchoninic acid assay. Data are expressed as percentage, where LPS stimulation (containing vehicle) was set at 100 %. Average absolute value for nitrite production with LPS stimulation (control) after 48 h was approximately 45 μm. Values are means of four separate experiments (each done in duplicate), with standard errors of the mean represented by vertical bars. Mean values were significantly different from the control: *P < 0·05, **P < 0·01, ***P < 0·001. OEA, oleoylethanolamine; LEA, linoleoylethanolamine; CLEA, conjugated linoleoylethanolamine; LNEA, linolenoylethanolamine; AEA, arachidonoylethanolamine; EPEA, eicosapentaenoylethanolamine; DEA, docosatetraenoylethanolamine; DHEA, docosahexaenoylethanolamine.

Figure 3

Fig. 3 Effect of docosahexaenoylethanolamine (DHEA) on monocyte chemotactic protein-1 (MCP-1) cytokine production in RAW264.7 macrophages at different time points. RAW264.7 cells were seeded at a density of 250 000 cells/ml and pre-incubated with a concentration series of DHEA for 30 min before (a) a 4 h lipopolysaccharide (LPS, 1 μg/ml) stimulation in the presence of DHEA and (b) a 16 h LPS (1 μg/ml) stimulation in the presence of DHEA. The supernatant of the cells was analysed for MCP-1 production by ELISA. The protein content of each well was determined by a bicinchoninic acid assay. Values for MCP-1 production were corrected for the amount of protein for each well separately. Data are expressed as percentage, where LPS stimulation (containing vehicle) was set at 100 %. Values are means of three separate experiments (each done in duplicate), with standard errors of the mean represented by vertical bars. Mean values were significantly different from the control: *P < 0·05, ***P < 0·001.

Figure 4

Fig. 4 Effect of docosahexaenoylethanolamine (DHEA) on monocyte chemotactic protein-1 (MCP-1) cytokine and nitric oxide production in peritoneal macrophages. Cells were seeded at a density of approximately 750 000 cells/ml and pre-incubated with a concentration series of DHEA 30 min before (a) a 24 h lipopolysaccharide (LPS, 1 μg/ml) stimulation in the presence of DHEA for nitric oxide determination and (b) a 16 h LPS (0·1 μg/ml) stimulation in the presence of DHEA for MCP-1 determination. The supernatant of the cells was analysed for nitric oxide using the Griess assay and for MCP-1 by ELISA. The protein content of each well was measured by a bicinchoninic acid assay. Values for MCP-1 and nitric oxide production were corrected for the amount of protein for each well separately. Data are expressed as percentage, where LPS stimulation (containing vehicle) was set at 100 %. Data for nitric oxide represent means of cells isolated from five different mice (with each biological sample performed in duplicate or triplicate), except for the doses of 0·1 μm-DHEA that was performed in three mice, with standard errors of the mean represented by vertical bars. For MCP-1 analysis, four mice were used (with each biological sample performed in duplicate or triplicate). Mean values were significantly different from the control: *P < 0·05, ***P < 0·001.

Figure 5

Fig. 5 Effect of docosahexaenoylethanolamine (DHEA) on lipopolysaccharide (LPS)-induced inducible nitric oxide synthase (iNOS) and monocyte chemotactic protein-1 (MCP-1) mRNA expression at 24 h. RAW264.7 cells were seeded at a density of 500 000 cells/ml and pre-incubated with a concentration series of DHEA for 30 min before a 24 h LPS stimulation in the presence of DHEA. Total RNA was isolated and reverse transcribed to give complementary DNA before performing quantitative real-time PCR. Details are described in the Methods section. iNOS and MCP-1 fold increase normalised to RPS27A2 is expressed as percentage, where LPS stimulation (without DHEA) was set at 100 %. Values are means of three separate experiments performed in duplicate, with standard errors represented by vertical bars. *** Mean value was significantly different from that of the control (P < 0·001).