Absorption and metabolism of the food contaminant 3-chloro-1,2-propanediol (3-MCPD) and its fatty acid esters by human intestinal Caco-2 cells

被引:0
作者
Thorsten Buhrke
Rüdiger Weißhaar
Alfonso Lampen
机构
[1] Federal Institute For Risk Assessment,Department of Food Safety
[2] CVUA Stuttgart,undefined
来源
Archives of Toxicology | 2011年 / 85卷
关键词
3-MCPD; 3-MCPD fatty acid ester; Food contaminant; Risk assessment; Caco-2;
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摘要
3-Chloro-1,2-propanediol (3-MCPD) fatty acid esters are formed upon thermal processing of fat-containing foods in the presence of chloride ions. Upon hydrolytic cleavage, these substances could release free 3-MCPD. This compound is toxicologically well characterised and displayed cancerogenic potential in rodent models. Recently, serious contaminations of different food products with 3-MCPD fatty acid esters have been reported. In regard to a risk assessment, the key question is to which degree these 3-MCPD fatty acid esters are hydrolysed in the human gut. Therefore, the aim of the present project was to examine the hydrolysis of 3-MCPD fatty acid esters and the resulting release of free 3-MCPD by using differentiated Caco-2 cells, a cellular in vitro model for the human intestinal barrier. Here, we show that 3-MCPD fatty acid esters at a concentration of 100 μM were neither absorbed by the cells nor the esters were transported via a Caco-2 monolayer. 3-MCPD-1-monoesters were hydrolysed in the presence of Caco-2 cells. In contrast, a 3-MCPD-1,2-diester used in this study was obviously absorbed and metabolised by the cells. Free 3-MCPD was not absorbed by the cells, but the substance migrated through a Caco-2 monolayer by paracellular diffusion. From these in vitro studies, we conclude that 3-MCPD-1-monoesters are likely to be hydrolysed in the human intestine, thereby increasing the burden with free 3-MCPD. In contrast, intestinal cells seem to have the capacity to metabolise 3-MCPD diesters, thereby detoxifying the 3-MCPD moiety.
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页码:1201 / 1208
页数:7
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  • [11] Kubota M(2004)Determination of free and bound 3-Chloropropane-1, 2-diol by gas chromatography with mass spectrometric detection using deuterated 3-chloropropane-1,2-diol as internal standard Czech J Food Sci 22 182-189
  • [12] Iguchi K(2005)Identification of BCRP as transporter of benzo[a]pyrene conjugates metabolically formed in Caco-2 cells and its induction by Ah-receptor agonists Carcinogenesis 26 1754-1763
  • [13] Usui S(2007)Evaluation of the genotoxic potential of 3-monochloropropane-1,2-diol (3-MCPD) and its metabolites, glycidol and beta-chlorolactic acid, using the single cell gel/comet assay Food Chem Toxicol 45 41-48
  • [14] Hirano K(2001)Commission Regulation No 466/2001. Setting maximum levels for certain contaminants in foodstuffs Off J Eur Communities 2001 5-24
  • [15] Ballard ST(2004)Chloropropanols and their esters in baked cereal products Czech J Food Sci 22 259-262
  • [16] Hunter JH(2002)Occurrence of 3-chloro-propane-1,2-diol (3-MCPD) and related compounds in foods: a review Food Addit Contam 19 619-631
  • [17] Taylor AE(1981)The fate of oxalic acid in the Wistar rat Xenobiotica 11 385-390
  • [18] Buesen R(1992)Trafficking of exogenous fatty acids within Caco-2 cells J Lipid Res 33 9-19
  • [19] Mock M(2000)Apolipoprotein B, a paradigm for proteins regulated by intracellular degradation, does not undergo intracellular degradation in CaCo2 cells J Biol Chem 275 3950-3956
  • [20] Seidel A(1983)Enterocyte like differentiation and polarization of the human colon carcinoma cell line Caco-2 in culture Biol Cell 47 323-330