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Immunological Investigations
A Journal of Molecular and Cellular Immunology
Volume 40, 2011 - Issue 4
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Research Article

Optimal Dendritic Cell Differentiation in RPMI Media Requires the Absence of HEPES Buffer

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Pages 413-426 | Published online: 11 Feb 2011

REFERENCES

  • Allavena, P., Piemonti, L., Longoni, D., Bernasconi, S., Stoppacciaro, A., Ruco, L., . (1998). IL-10 prevents the differentiation of monocytes to dendritic cells but promotes their maturation to macrophages. Eur. J. Immunol. 28(1):359–369.
  • Banchereau, J., Briere, F., Caux, C., Davoust, J., Lebecque, S., Liu, Y. J., . (2000). Immunobiology of dendritic cells. Annu. Rev. Immunol. 18:767–811.
  • Berthois, Y., Katzenellenbogen, J. A., Katzenellenbogen, B. S. (1986). Phenol red in tissue culture media is a weak estrogen: implications concerning the study of estrogen-responsive cells in culture. Proc. Natl. Acad. Sci. USA 83(8):2496–2500.
  • Chomarat, P., Banchereau, J., Davoust, J., Palucka, A. K. (2000). IL-6 switches the differentiation of monocytes from dendritic cells to macrophages. Nat. Immunol. 1(6):510–514.
  • Chomarat, P., Dantin, C., Bennett, L., Banchereau, J., Palucka, A. K. (2003). TNF skews monocyte differentiation from macrophages to dendritic cells. J. Immunol. 171(5):2262–2269.
  • Geissmann, F., Prost, C., Monnet, J. P., Dy, M., Brousse, N., Hermine, O. (1998). Transforming growth factor beta1, in the presence of granulocyte/macrophage colony-stimulating factor and interleukin 4, induces differentiation of human peripheral blood monocytes into dendritic Langerhans cells. J. Exp. Med. 187(6):961–966.
  • Grassi, F., Dezutter-Dambuyant, C., McIlroy, D., Jacquet, C., Yoneda, K., Imamura, S., . (1998). Monocyte-derived dendritic cells have a phenotype comparable to that of dermal dendritic cells and display ultrastructural granules distinct from Birbeck granules. J. Leukoc. Biol. 64(4):484–493.
  • Grimaldi, C. M. (2006). Sex and systemic lupus erythematosus: the role of the sex hormones estrogen and prolactin on the regulation of autoreactive B cells. Curr. Opin. Rheumatol. 18(5):456–461.
  • Jonuleit, H., Schmitt, E., Schuler, G., Knop, J., Enk, A. H. (2000). Induction of interleukin 10-producing, nonproliferating CD4(+) T cells with regulatory properties by repetitive stimulation with allogeneic immature human dendritic cells. J. Exp. Med. 192(9):1213–1222.
  • Lambert, K. C., Curran, E. M., Judy, B. M., Milligan, G. N., Lubahn, D. B., Estes, D. M. (2005). Estrogen receptor alpha (ERalpha) deficiency in macrophages results in increased stimulation of CD4+ T cells while 17beta-estradiol acts through ERalpha to increase IL-4 and GATA-3 expression in CD4+ T cells independent of antigen presentation. J. Immunol. 175(9):5716–5723.
  • Mao, A., Paharkova-Vatchkova, V., Hardy, J., Miller, M. M., Kovats, S. (2005). Estrogen selectively promotes the differentiation of dendritic cells with characteristics of Langerhans cells. J. Immunol. 175(8):5146–5151.
  • Obermajer, N., Svajger, U., Bogyo, M., Jeras, M., Kos, J. (2008). Maturation of dendritic cells depends on proteolytic cleavage by cathepsin X. J. Leukoc. Biol. 84(5):1306–1315.
  • Pettersson, A., Ciumas, C., Chirsky, V., Link, H., Huang, Y. M., Xiao, B. G. (2004). Dendritic cells exposed to estrogen in vitro exhibit therapeutic effects in ongoing experimental allergic encephalomyelitis. J. Neuroimmunol. 156(1–2):58–65.
  • Polanczyk, M. J., Hopke, C., Vandenbark, A. A., Offner, H. (2006). Estrogen-mediated immunomodulation involves reduced activation of effector T cells, potentiation of Treg cells, and enhanced expression of the PD-1 costimulatory pathway. J. Neurosci. Res. 84(2):370–378.
  • Roncarolo, M. G., Levings, M. K., Traversari, C. (2001). Differentiation of T regulatory cells by immature dendritic cells. J. Exp. Med. 193(2):F5–9.
  • Rossi, M., Young, J. W. (2005). Human dendritic cells: potent antigen-presenting cells at the crossroads of innate and adaptive immunity. J. Immunol. 175(3):1373–1381.
  • Sallusto, F., Cella, M., Danieli, C., Lanzavecchia, A. (1995). Dendritic cells use macropinocytosis and the mannose receptor to concentrate macromolecules in the major histocompatibility complex class II compartment: downregulation by cytokines and bacterial products. J. Exp. Med. 182(2):389–400.
  • Svajger, U., Vidmar, A., Jeras, M. Niflumic acid renders dendritic cells tolerogenic and up-regulates inhibitory molecules ILT3 and ILT4. Int. Immunopharmacol. 8(7):997–1005.
  • Tai, P., Wang, J., Jin, H., Song, X., Yan, J., Kang, Y., . (2008). Induction of regulatory T cells by physiological level estrogen. J. Cell. Physiol. 214(2):456–464.
  • Yamamoto, D., Suzuki, N. (1987). Blockage of chloride channels by HEPES buffer. Proc. Roy. Soc. Lond. B Biol. Sci. 230(1258):93–100.
  • Zhu, W. H., Lu, C. Z., Huang, Y. M., Link, H., Xiao, B. G. (2007). A putative mechanism on remission of multiple sclerosis during pregnancy: Estrogen-induced indoleamine 2,3-dioxygenase by dendritic cells. Mult. Scler. 13(1):33–40.

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