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Platelet activation and aggregation at sites of vascular injury are essential processes to limit blood loss but they also contribute to arterial thrombosis, which can lead to myocardial infarction and stroke. Stable thrombus formation requires a series of events involving platelet receptors which contribute to adhesion, activation and aggregation of platelets. Regulation of receptor expression by (metallo-)proteinases has been described for several platelet receptors, but the molecular mechanisms are ill-defined. The signaling lymphocyte activation molecule (SLAM) family member CD84 is expressed in immune cells and platelets, however its role in platelet physiology was unclear. In this thesis, CD84 deficient mice were generated and analyzed. In well established in vitro and in vivo assays testing platelet function and thrombus formation, CD84 deficient mice displayed phenotypes indistinguishable from wild-type controls. It was concluded that CD84 in platelets does not function as modulator of thrombus formation, but rather has other functions. In line with this, in the second part of this thesis, a novel regulation mechanism for platelet CD84 was discovered and elucidated. Upon platelet activation, the N-terminus of CD84 was found to be cleaved exclusively by the a disintegrin and metalloproteinase 10 (ADAM10), whereas the intracellular part was cleaved by calpain. In addition, regulation of the platelet activating collagen receptor glycoprotein VI (GPVI) was studied and it was shown that GPVI is in contrast to CD84 differentially regulated by ADAM10 and ADAM17. A novel role of CD84 under pathophysiological conditions was revealed as CD84 deficient mice were protected from ischemic stroke in the model of transient middle cerebral artery occlusion and this protection was based on the lack of CD84 in T cells. Ca2+ is an essential second messenger that facilitates activation of platelets and diverse functions in different eukaryotic cell types. Store-operated Ca2+ entry (SOCE) represents the major mechanism leading to rise in intracellular Ca2+ concentration in non-excitable cells. The Ca2+ sensor STIM1 (stromal interaction molecule 1) and the SOC channel subunit protein Orai1 are established mediators of SOCE in platelets. STIM2 is the major STIM isoform in neurons, but the role of the SOC channel subunit protein Orai2 in platelets and neurons has remained elusive. In the third part of this thesis, Orai2 deficient mice were generated and analyzed. Orai2 was dispensable for platelet function, however, Orai2 deficient mice were protected from ischemic neurodegeneration and this phenotype was attributed to defective SOCE in neurons.
PTPN22 encodes the lymphoid tyrosine phosphatase Lyp that can dephosphorylate Lck, ZAP-70 and Fyn to attenuate TCR signaling. A single-nucleotide polymorphism (C1858T) causes a substitution from arginine (R) to tryptophan (W) at 620 residue (R620W). Lyp-620W has been confirmed as a susceptible allele in multiple autoimmune diseases, including type 1 diabetes (T1D). Several independent studies proposed that the disease-associated allele is a gain-of-function variant. However, a recent report found that in human cells and a knockin mouse containing the R620W homolog that Ptpn22 protein degradation is accelerated, indicating Lyp-620W is a loss-of-function variant. Whether Lyp R620W is a gain- or loss-of-function variant remains controversial. To resolve this issue, we generated two lines (P2 and P4) of nonobese diabetic (NOD) mice in which Ptpn22 can be inducibly silenced by RNAi. We found long term silencing of Ptpn22 increased spleen cellularity and regulatory T (Treg) cell numbers, replicating the effect of gene deletion reported in the knockout (KO) B6 mice. Notably, Ptpn22 silencing also increased the reactivity and apoptotic behavior of B lymphocytes, which is consistent with the reduced reactivity and apoptosis of human B cells carrying the alleged gain-of-function PTPN22 allele. Furthermore, loss of Ptpn22 protected P2 KD mice from spontaneous and Cyclophosphamide (CY) induced diabetes. Our data support the notion that Lyp-620W is a gain-of-function variant. Moreover, Lyp may be a valuable target for the treatment of autoimmune diseases.
Krebserkrankungen zeichnen sich häufig durch Störungen zellulärer Differenzierungsprozesse aus. So weisen Rhabdomyosarkome, die aus Muskelvorläuferzellen hervorgehen, Differenzierungsdefekte auf, die zur unkontrollierten Proliferation der Tumorzellen führen. Bislang ist ungeklärt, ob die Differenzierungsdefekte auf der verstärkten Expression von Inhibitoren, der defekten Funktion von Aktivatoren oder einer Kombination von beidem beruht. In dieser Arbeit wird gezeigt, dass im Unterschied zu normalen Muskelzellen RMS-Zellen verstärkt DeltaNp73, einen Pan-Inhibitor der p53-Tumorsuppressorfamilie, exprimieren. Die experimentelle Überexpression von DeltaNp73 in normalen Myoblasten blockierte die Muskeldifferenzierung und förderte in Kombination mit klassischen RMS-Onkogenen wie IGF2 oder PAX3/FKHR die maligne Transformation. Umgekehrt führte die Hemmung von DeltaNp73 durch RNAi zur Reduktion der Tumorigenität von RMS-Tumorzellen. Da DeltaNp73 als dominant-negativer Inhibitor der p53-Familie wirkt, lies die Hemmung von Differenzierungsprozessen durch DeltaNp73 vermuten, dass die p53-Familienmitglieder (p53, p63, und p73) an der Regulation der Muskeldifferenzierung beteiligt sind. Tatsächlich konnte in dieser Arbeit gezeigt werden, dass die drei p53-Familienmitglieder bei der Induktion später Differenzierungsstadien kooperieren, indem sie die Aktivität des Retinoblastoma-Proteins RB regulieren. Die Funktion von RB ist bekanntermassen sowohl für den permanenten Zellzyklusarrest als auch für die Aktivierung Muskel-spezifischer Gene notwendig. Während p53 die Proteinspiegel von RB reguliert, kontrollieren p63 und p73 den Aktivierungsgrad von RB, indem sie dessen Phoshphorylierungszustand über den Zyklin-abhängigen Kinaseinhibitor p57KIP2 modifizieren. Eine Hemmung dieser Funktionen blockiert das Differenzierungsprogramm und fördert die Tumorentstehung. Die Aktivierung zellulärer Differenzierungsprozesse stellt somit einen entscheidenden Bestandteil der Tumorsuppressoraktivität der p53-Familie dar und liefert eine Erklärung für die Häufigkeit von Mutationen im p53-Signalweg bei Rhabdomyosarkom-Patienten.