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Research Article

Ammonium perfluorooctanoate substantially alters phenotype and cytokine secretion of human monocyte-derived dendritic cells in vitro

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Pages 641-646 | Received 27 Jan 2009, Accepted 04 Apr 2009, Published online: 30 Oct 2009

References

  • Guenthner, R.A., Vietor, M.L. Surface active materials from perfluorocarboxylic acid. Ind. Eng. Chem. Prod. Res. Dev. 1962, 1, 165–167.
  • Lau, C., Butenhoff, J.L., Rogers, J.M. The developmental toxicity of perfluoroalkyl acids and their derivatives. Toxicol. Appl. Pharmacol. 2004, 198, 231–241.
  • Renner, R. Growing concern over perfluorinated chemicals. Environ. Sci. Technol. 2001, 35, 154A–160A.
  • Banchereau, J., Steinman, R.M. Dendritic cells and the control of immunity. Nature 1998, 392(6673), 245–252.
  • MacPherson, G.G. Lymphoid dendritic cells: Their life history and roles in immune responses. Res. Immunol. 1989, 140, 877–926.
  • Clark, G.J., Angel, N., Kato, M., et al. The role of dendritic cells in the innate immune system. Microbes Infect. 2000, 2, 257–272.
  • Lanzavecchia, A., Sallusto, F. Regulation of T cell immunity by dendritic cells. Cell 2001, 106, 263–266.
  • Sallusto, F., Lanzavecchia, A. Efficient presentation of soluble antigen by cultured human dendritic cells is maintained by granulocyte/macrophage colony-stimulating factor plus interleukin 4 and downregulated by tumor necrosis factor α. J. Exp. Med. 1994, 179(4), 1109–1118.
  • Jonuleit, H., Kühn, U., Müller, G., et al. Pro-inflammatory cytokines and prostaglandins induce maturation of potent immunostimulatory dendritic cells under fetal calf serum-free conditions. Eur. J. Immunol. 1997, 27(12): 3135–3142.
  • Gao, D., Mondal, T.K., Lawrence, D.A. Lead effects on development and function of bone marrow-derived dendritic cells promote Th2 immune responses. Toxicol. Appl. Pharmacol. 2007, 222(1), 69–79.
  • Laupeze, B., Amiot, L., Sparfel, L., et al. Polycyclic aromatic hydrocarbons affect functional differentiation and maturation of human monocyte-derived dendritic cells. J. Immunol. 2002, 168, 2652–2658.
  • Hymery, N., Sibiril, Y., Parent-Massin, D. In vitro effects of trichothecenes on human dendritic cells. Toxicol. in Vitro 2006, 20, 899–909.
  • Vorderstrasse, B.A., Dearstyne, E.A., Kerkvliet, N.I. Influence of 2,3,7,8-tetrachlorodibenzo-p-dioxin on the antigen-presenting activity of dendritic cells. Toxicol. Sci. 2003, 72, 103–112.
  • Sanderson, J.P., Naisbitt, D.J., Farrell, J., et al. Sulfamethoxazole and its metabolite nitroso sulfamethoxazole stimulate dendritic cell costimulatory signaling. J. Immunol. 2007, 178, 5533–5542.
  • Ryan, C.A., Gerberick, G.F., Gildea, L.A., et al. Interactions of contact allergens with dendritic cells: Opportunities and challenges for the development of novel approaches to hazard assessment. Toxicol. Sci. 2005, 88, 4–11.
  • Schreiner, M., Peiser, M., Briechle, D., et al. A new dendritic cell type suitable as sentinel of contact allergens. Toxicology 2008, 249: 146–152.
  • Verhasselt, V., Buelens, C., Willems, F., et al. Bacterial lipopolysaccharide stimulates the production of cytokines and the expression of costimulatory molecules by human peripheral blood dendritic cells: Evidence for a soluble CD14-dependent pathway. J. Immunol. 1997, 158(6), 2919–2925.
  • Zhou, L.J., Tedder, T.F. Human blood dendritic cells selectively express CD83, a member of the immunoglobulin superfamily. J. Immunol. 1995, 154(8), 3821–3835.
  • Jasny, E., Eisenblätter, M., Mätz-Rensing, K., et al. IL-12-impaired and IL-12-secreting dendritic cells produce IL-23 upon CD154 restimulation. J. Immunol. 2008, 180, 6629–6639.
  • Abate, G., Eslick, J., Newman, F.K., et al. Flow-cytometric detection of vaccinia-induced memory effector CD4(+), CD8(+), and gamma delta TCR(+) T-cells capable of antigen-specific expansion and effector functions. J. Infect. Dis. 2005, 192(8), 1362–1371.
  • Hulette, B.C., Ryan, C.A., Gildea, L.A., Gerberick, G.F. Relationship of CD86 surface marker expression and cytotoxicity on dendritic cells exposed to chemical allergen. Toxicol. Appl. Pharmacol. 2005, 209, 159–166.
  • Matzinger, P. The danger model: A renewed sense of self. Science 2002, 296, 301–305.
  • Pepin, E., Goutet, M., Ban, M. Murine bone marrow-derived dendritic cells as a potential in vitro model for predictive identification of chemical sensitizers. Toxicol. Lett. 2007, 175, 89–101.
  • Jugde, F., Boissier, C., Rougier-Larzat, N., et al. Regulation by allergens of chemokine receptor expression on in vitro-generated dendritic cells. Toxicology 2005, 212, 227–238.
  • Jonuleit, H., Kühn, U., Müller, G., et al. Pro-inflammatory cytokines and prostaglandins induce maturation of potent immunostimulatory dendritic cells under fetal calf serum-free conditions. Eur. J. Immunol. 1997, 27(12), 3135–3142.

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