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Effective T cell immunity was believed to occur by mature DC, whereas tolerogenicity was attributed strictly to immature DC phenotypes. However, intermediate DC maturation stages were identified conditioned by inflammatory mediators like TNF. Furthermore, the T cell tolerance mechanisms are dependent on distinct modes and intensities of co-stimulation. Therefore, in this study it was addressed how distinct DC maturation signatures instruct CD4+ T cell tolerance mechanisms. DC acquire antigens from apoptotic cells for self-peptide-MHC presentation and functionally adapt presumed tolerogenic DC phenotypes. Here, immature murine bone-marrow derived DC representing both inflammatory and conventional DC subsets adapted a maturationresistant DC signature upon apoptotic cell recognition but no additional tolerogenic features. Immature DC instruct CD4+ FoxP3+ regulatory T cells in a TGF-β prone micro-environment or generate anergic CD4+ T cells hampered in the TCR-induced proliferation and IL-2 secretion. Secondary stimulation of such anergic CD4+ T cells by immature DC increased primarily IL-10 production and conferred regulatory function. These IL-10+ regulatory T cells expressed high levels of CTLA-4, which is potently induced by immature DC in particular. Data in this work showed that anergic T cells can be re-programmed to become IL-10+ regulatory T cells upon ligation of CTLA-4 and CD28 signalling cascades by B7 costimulatory ligands on immature DC. In contrast, semi-mature DC phenotypes conditioned by the inflammatory mediator TNF prevented autoimmune disorders by induction of IL-10+ Th2 responses as demonstrated previously. Here, it was shown that TNF as an endogenous maturation stimulus and pathogenic Trypanosoma brucei variant-specific surface glycoproteins (VSG) induced highly similar DC gene expression signatures which instructed default effector Th2 responses. Repetitive administration of the differentially conditioned semi-mature DC effectively skewed T cell immunity to IL-10+ Th2 cells, mediating immune deviation and suppression. Collectively, the data presented in this work provide novel insights how immature and partially mature DC phenotypes generate T cell tolerance mechanisms in vitro, which has important implications for the design of effective DC-targeted vaccines. Unravelling the DC maturation signatures is central to the long-standing quest to break tolerance mimicked by malignant tumours or re-establish immune homeostasis in allergic or autoimmune disorders.
Summary: In the present work, two important negative regulators of T cell responses in rats were examined. At the molecular level, rat CTLA-4, a receptor important for deactivating T cell responses, was examined for the expression pattern and in vitro functions. For this purpose, anti-rat CTLA-4 mAbs were generated. Consistent with the studies in mice and humans, rat CTLA-4 was detectable only in CD25+CD4+ regulatory T cells in unstimulated rats, and was upregulated in all activated T cells. Cross-linking rat CTLA-4 led to the deactivation of anti-TCR- and anti-CD28 stimulated (costimulation) T cell responses such as reduction in activation marker expression, proliferation, and cytokine IL-2 production. Although T cells stimulated with the superagonistic anti-CD28 antibody alone without TCR engagement also increased their CTLA-4 expression, a delayed kinetics of CTLA-4 upregulation was found in cells stimulated in this way. The physiological relevance of this finding needs further investigation. At the cellular level, rat CD25+CD4+ regulatory T cells were examined here in detail. Using rat anti-CTLA-4 mAbs, the phenotype of CD25+CD4+ regulatory T cells was investigated. Identical to the mouse and human Treg phenotype, rat CD25+CD4+ T cells constitutively expressed CTLA-4, were predominantly CD45RC low, and expressed high level of CD62L (L-selectin). CD25+CD4+ cells proliferated poorly and were unable to produce IL-2 upon engagement of the TCR and CD28. Furthermore, rat CD25+CD4+ cells produced high amounts of anti-inflammatory cytokine IL-10 upon stimulation. Importantly, freshly isolated CD25+CD4+ T cells from naïve rats exhibited suppressor activities in the in vitro suppressor assays. In vitro, CD25+CD4+ regulatory T cells proliferated vigorously upon superagonistic anti-CD28 stimulation and became very potent suppressor cells. In vivo, a single injection of CD28 superagonist into rats induced transient accumulation and activation of CD25+CD4+ regulatory T cells. These findings suggest firstly that efficient expansion of CD25+CD4+ cells without losing their suppressive effects (even enhance their suppressive activities) can be achieved with the superagonistic anti- CD28 antibody in vitro. Secondly, the induction of disproportional expansion of CD25+CD4+ cells by a single injection of superagonistic anti-CD28 antibody in vivo implies that superagonistic anti-CD28 antibody may be a promising candidate in treating autoimmune diseases by causing a transient increase of activated CD25+CD4+ T cells and thus tipping ongoing autoimmune responses toward selftolerance.
Genome-wide association studies revealed CLEC16A as a candidate gene for Type 1 Diabetes and multiple other autoimmune disorders. The function of CLEC16A remains unknown. However, previous work showed that the CLEC16A ortholog ema and the murine Clec16a were both implicated in autophagy, a process partially required for MHC class II loading and antigen presentation. Furthermore, studies could show that autophagy was required in thymic epithelial cells for antigen presentation during T cell selection, suggesting a possible role of CLEC16A in T cell selection in the thymus. Additionally, it was postulated that CLEC16A may function as an expression quantitative trait locus for its neighboring genes and that Clec16a KD was involved in pancreatic islet function and impaired insulin secretion and glucose homeostasis. Prior to this work, Schuster et al. had created a Clec16a KD NOD mouse, which was protected from spontaneous autoimmune diabetes.
For this work it was hypothesized that CLEC16A variation serves as a Type 1 Diabetes risk gene by affecting autophagy in thymic epithelial cells, which modulates antigen presentation and shapes the T cell repertoire. To expand and complement previous findings by Schuster et al., this thesis aimed to investigate how CLEC16A modifies the function of thymic epithelial cells. For this purpose, CLEC16A KD was induced in human cells via RNA interference and autophagy was studied through immunoblotting. Additionally, inflammation of pancreatic tissue in Clec16a KD NOD mice was scored using H.E. stained pancreatic sections. Thymic transplantation experiments were conducted to test whether the effects of Clec16a KD were T cell intrinsic. Also, intraperitoneal glucose tolerance tests were performed to study glucose homeostasis in Clec16a KD NOD animals. Finally, using qPCR, gene expression levels of neighboring genes such as Dexi and Socs1 were measured to study Clec16a as an expression quantitative trait locus.
In combination with the findings of Schuster et al., this thesis demonstrates that Clec16a KD reduces the severity of insulitis and protects from onset of spontaneous diabetes in the NOD mouse. Disease protection is conveyed by impaired autophagy in TEC, which leads to altered T cell selection and hyporeactive CD4+ T cells. The effects of Clec16a KD in the NOD mouse are thymus intrinsic. Glucose homeostasis remains unchanged in the Clec16a KD NOD mouse and plays no role in disease protection. Clec16a and Dexi presented similar expression levels, but further studies are required to investigate a clear link between these two genes. Finally, impaired autophagy could be replicated in human CLEC16A KD cells, which demonstrates a conserved function of CLEC16A and suggests a possible link between CLEC16A variation and risk of autoimmune disease in human.