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Daniel, Carolin

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Daniel

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Carolin

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Daniel, Carolin

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Now showing 1 - 2 of 2
  • Publication

    Retinoic Acid Can Enhance Conversion of Naive into Regulatory T Cells Independently of Secreted Cytokines

    (The Rockefeller University Press, 2009) Nolting, Jens; Reuter, Sabine; Stuelten, Christina; Li, Peng; Sucov, Henry; Kim, Byung-Gyu; Letterio, John J.; Kretschmer, Karsten; Daniel, Carolin; Kim, Hye-Jung; von Boehmer, Harald

    It has been reported that retinoic acid (RA) enhances regulatory T (T reg) cell conversion by inhibiting the secretion of cytokines that interfere with conversion. This report shows that these conclusions provide a partial explanation at best. First, RA not only interfered with cytokine secretion but also with the ability of these cytokines to inhibit T reg cell conversion of naive T cells. Furthermore, RA enhanced conversion even in the absence of inhibitory cytokines. The latter effect depended on the RA receptor α (RARα) but did not require Smad3, despite the fact that RA enhanced Smad3 expression. The RARα1 isoform was not essential for RA-dependent enhancement of transforming growth factor β–driven conversion, suggesting that conversion can also be mediated by RARα2. Interleukin (IL)-6 strongly reduced RARα expression levels such that a deficiency of the predominant RARα1 isoform leaves too little RARα2 for RA to inhibit the generation of Th17 cells in the presence of IL-6.

  • Publication

    Prevention of Type 1 Diabetes in Mice by Tolerogenic Vaccination with a Strong Agonist Insulin Mimetope

    (The Rockefeller University Press, 2011) Daniel, Carolin; Weigmann, Benno; Bronson, Roderick; von Boehmer, Harald

    Type 1 diabetes (T1D) results from the destruction of insulin-secreting pancreatic cells by autoreactive T cells. Insulin is an essential target of the autoimmune attack. Insulin epitopes recognized by diabetogenic T cell clones bind poorly to the class II I-A(^{g7}) molecules of nonobese diabetic (NOD) mice, which results in weak agonistic activity of the peptide MHC complex. Here, we describe a strongly agonistic insulin mimetope that effectively converts naive T cells into Foxp3(^+) regulatory T cells in vivo, thereby completely preventing T1D in NOD mice. In contrast, natural insulin epitopes are ineffective. Subimmunogenic vaccination with strongly agonistic insulin mimetopes might represent a novel strategy to prevent T1D in humans at risk for the disease.