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Institute
- Graduate School of Life Sciences (1034)
- Theodor-Boveri-Institut für Biowissenschaften (101)
- Rudolf-Virchow-Zentrum (70)
- Medizinische Fakultät (44)
- Institut für Pharmakologie und Toxikologie (39)
- Institut für Virologie und Immunbiologie (35)
- Institut für Psychologie (34)
- Institut für Molekulare Infektionsbiologie (33)
- Klinik und Poliklinik für Psychiatrie, Psychosomatik und Psychotherapie (29)
- Julius-von-Sachs-Institut für Biowissenschaften (25)
Sonstige beteiligte Institutionen
- Helmholtz Institute for RNA-based Infection Research (HIRI) (7)
- Universitätsklinikum Münster (3)
- Rudolf Virchow Center for Integrative and Translational Bioimaging, University of Würzburg (2)
- Zentrum für Infektionsforschung (ZINF) Würzburg (2)
- Bio-Imaging Center Würzburg (1)
- Biomedical Center Munich, Department of Physiological Chemistry, Ludwig-Maximilians-Universität München (1)
- CAPES - Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - the development agency of the Brazilian Federal Government (1)
- CBIO, University of Cape Town, South Africa (1)
- Carl-Ludwig-Institut für Physiologie, Universität Leipzig (1)
- Chair of Experimental Biomedicine I (1)
The ubiquitination of proteins controls a multitude of physiological processes. This versatility of ubiquitin as a molecular signal arises from the diverse ways by which it can be attached to target proteins. Different ubiquitination patterns are then translated into different downstream consequences. Due to the enormous complexity of possible ubiquitin modifications, the ubiquitination machinery must be highly specific and tightly controlled. Ubiquitination proceeds through an enzymatic cascade, the last step of which is catalyzed by the E3 enzyme family. E3 enzymes are the crucial regulators since they dictate the specificity of substrate selection and modification.
Deregulation of the HECT-type ubiquitin ligase E6AP (UBE3A) is implicated in human papilloma virus-induced cervical tumorigenesis and several neurodevelopmental disorders. Yet the structural underpinnings of activity, regulation and specificity in this crucial ligase are incompletely understood.
One aim of this study was to unravel the role of the a1’-helix N-terminal to the HECT domain that was found to be a key element mediating regulation and oligomerization in other HECT ligases. I found that most N-terminally extended HECT domain constructs were insoluble when expressed in E. coli, indicating that additional regions N-terminal to the tested fragments may be essential to protect this highly hydrophobic helix from causing aggregation.
Another question addressed in this study was how E6AP builds ubiquitin chains. Using single-turnover experiments, I showed that ubiquitin-loaded E6AP is unable to transfer an additional ubiquitin molecule onto a stably linked ubiquitin-E6AP complex. This indicates that E6AP cannot assemble chains on its active site and may instead follow a sequential addition mechanism in which one ubiquitin molecule is transferred at a time to the target protein.
Using NMR spectroscopy and extensive mutational analyses, the determinants of ubiquitin recognition by the C-lobe of E6AP were unraveled and assigned to particular steps in the catalytic cycle. A functionally critical interface was identified that is specifically required during thioester formation between the C-terminus of ubiquitin and the ligase active site. This interface resembles the one utilized by NEDD4-type enzymes, suggesting a conserved ubiquitin binding mode across HECT ligases, independent of their linkage specificities. Moreover, I identified critical surface patches on ubiquitin and in the N- and C-terminal portions of the catalytic domain of E6AP that are important for the subsequent step of isopeptide bond formation. I also uncovered key determinants of the Lys48-linkage specificity of E6AP, both in the E6AP HECT domain and ubiquitin itself. This includes the C-terminal tail of E6AP and a hydrophilic surface region of ubiquitin in proximity to the acceptor site, Lys48. It is thus tempting to speculate that ubiquitin linkage formation by E6AP is substrate-assisted. Taken together, my results improve our mechanistic understanding of the structure-function relationship between E6AP and ubiquitin, thus providing a basis for ultimately manipulating the functions of this HECT ligase for therapeutic applications.
In this thesis, three species were investigated for the conservation of two non-conventional T cell systems, the CD1d/ iNKT cell system and the BTN3/ Vγ9Vδ2 T cell system. Non-conventional T cells are αβ or γδ T cells that do not fit into the classical mode of antigen recognition and adaptive responses. These T cells recognize antigens different from classical peptide antigens and are not restricted to the polymorphic MHC molecules but rather to non-polymorphic antigen-presenting molecules. The iNKT cell subset is restricted by the lipid antigen-presenting molecule CD1d and carries out immunomodulatory functions by rapid cytokine secretion. The molecular basis of this system, the semi-invariant iNKT TCR chains and CD1d were proven to be expressed and compared to homologs in human and rodents. Cotton rats possess multiple members of the AV14 and BV8 family and only one isoform of CD1d which is comparable to findings in the rat.
Moreover, the reactivity of primary cells to glycolipid antigens could be shown, and an iNKT
cell-like population was detected in primary cells using newly developed cotton rat CD1d oligomers. These were also applied to test the capacity of CD1d to present typical glycolipid
antigens to iNKT TCR transductants. In addition, expression of cotton rat iNKT TCR α and β chains in TCR-negative cell lines was used to show successful pairing and detection of glycolipids in the context of CD1d. In summary, the conservation of a functional CD1d/iNKT cell system in the cotton rat could be shown, and tools were developed to study this cell subset in the course of infectious diseases. The Vγ9Vδ2 T cell subset is the major γδ T cell subset in human peripheral blood and has the unique ability to contribute to immune surveillance by detecting pyrophosphorylated metabolites of isoprenoid synthesis that indicate cell stress, transformation or infection. Up to this date, phosphoantigen-reactive γδ T cells have only been shown in primate species. However, evidence for the existence and functional conservation of the genes implied in the BTN3/Vγ9Vδ2 T cell system was found in several placental mammal species,
and two candidate species were chosen for further investigation. The nine-banded armadillo, a valuable model for leprosy research, was shown to possess homologous genes to TRGV9, TRDV2 and BTN3. In this study, the expression of productive rearrangements of TRDV2 gene segments could be shown in peripheral blood samples, but no evidence was found for the expression of a functional TRGV9 rearrangement or BTN3 molecules. Moreover, determinants of phosphoantigen-reactive Vγ9Vδ2 T cells and functional BTN3 molecules were found to still be prevalent in armadillo genes. This makes the armadillo an interesting model to study the structural determinants that allow phosphoantigen recognition by a functional Vγ9Vδ2 T cell subset although this species is merely a witness for a functional system in a placental mammal ancestor. In contrast, alpacas were shown to express functional Vγ9Vδ2 T cells which conserved many features of the human counterpart. Expression of Vγ9Vδ2 pairings could be shown by single-cell PCR and functional phosphoantigenreactive pairings were observed. This phosphoantigen reactivity was also shown in PBMC cultures with a newly developed antibody specific for alpaca Vδ2Jδ4 chains. Moreover, a more detailed study of the alpaca TCR repertoire showed similarities to “γδ high” species like
camelids and cattle which possess an extended family of TRDV genes. The γ and δ loci of alpaca
TCR genes were drafted based on genomic information and cDNA studies and provide an overview for more detailed studies. Conservation of phosphoantigen recognition by the single BTN3 molecule of alpacas was shown in 293T knock out cell lines, and BTN3 detection on PBMCs was investigated with a newly developed alpaca BTN3-specific antibody. These findings prove the existence of a functional BTN3-dependent phosphoantigen-reactive Vγ9Vδ2 T cell subset and provide a basis for the future study of this cell system in a non-primate species. Moreover, as the first non-primate candidate species with the BTN3/Vγ9Vδ2 T cell system the alpaca is an important outgroup for research in this field. The use of a single BTN3 variant in contrast to three human isoforms that work together renders the alpaca a unique and to this date indispensable model for Vγ9Vδ2 T cells.
In conclusion, this study provides an overview of the applicability of new animal models in the
study of the non-conventional T cell subsets iNKT cells and Vγ9Vδ2 T cells and leads the way for a better understanding of structural and functional relationships.
Despite the large number of G protein-coupled receptors (GPCRs) expressed in the central nervous system (CNS), little is known about their location, organization, and dynamics in functional nanodomains at synapses. Class C GPCRs including metabotropic glutamate receptors (mGluRs) and the γ-aminobutyric acid subtype B receptor (GABABR) mediate several key functions in synaptic transmission. However, it is still insufficiently understood how these receptors function at synapses to modulate neurotransmission. One limitation is the availability of techniques to examine receptors with high spatiotemporal resolution in physiologically relevant cells. To investigate the distribution and spatiotemporal dynamics of mGluR4 and GABABR in cerebellar slices and cultured hippocampal neurons, I used advanced imaging techniques, including single-molecule imaging and superresolution microscopy with high spatial (10-20 nm) and temporal (20 ms) resolution.
The presynaptic active zone (AZ) is a highly organized structure that specializes in neurotransmitter release. mGluR4 is a prototypical presynaptic class C GPCR. mGluR4 mediates an inhibitory effect on presynaptic glutamate release mainly via the inhibition of P/Q type voltage dependent calcium channels (CaV2.1). In this study, I analyzed the organization of mGluR4 at the synapse between parallel fibers and Purkinje cells in the mouse cerebellum with near-molecular resolution using two-color direct stochastic optical reconstruction microscopy (dSTORM). Quantitative analyses revealed a four-fold mGluR4 enrichment at parallel fiber AZs. I found that an AZ contains 29 mGluR4 nanoclusters on average. Each nanocluster contains one or two mGluR4s, with few nanoclusters containing three or more receptors. To assess the spatial distribution of mGluR4 relative to functional active zone elements such as CaV2.1 and Munc 18-1 (an essential component of the synaptic secretory machinery), a distance-based colocalization analysis was used. The analysis revealed positive correlation between mGluR4 and both proteins at a distance of 40 nm. Interestingly, mGluR4 showed a higher positive correlation to Munc 18-1 in comparison to CaV2.1. These results suggest that mGluR4 might directly inhibit the exocytotic machinery to reduce glutamate release from the synaptic vesicles in addition to its role in the inhibition of presynaptic calcium influx. The revealed high degree of mGluR4 organization may provide a new ultrastructural basis to explain the depressive effect of mGluR4 on the neurotransmission.
Moreover, I directly imaged GABABR dynamic behavior with high spatiotemporal resolution in living hippocampal neurons utilizing single-molecule total internal reflection fluorescence microscopy (TIRFM). To this purpose, the GABAB1 subunit was engineered with an N-terminal SNAP-tag to enable specific labeling with bright organic fluorophores. On the plasma membrane surface, immobile and mobile GABABRs were detected at both synaptic and extrasynaptic compartments. A mean square displacement analysis (MSD) revealed characteristic dynamic patterns of GABABR depending on receptor location inside or outside of the synapses. The majority of receptors belonging to the extrasynaptic pool displayed rapid and free diffusion. In contrast, approximately 80% of receptors residing at the synaptic compartments were immobile or confined within limited regions. Receptors located at pre- and post-synaptic sites showed a similar behavior. GABABR lateral diffusion patterns inside and outside synapses might be important for the regulation of efficacy of synaptic inhibition.
Altogether, this study puts forward previously unknown GPCR nanoscopic details in functional nanodomains. GPCR spatial organization might be important for the efficiency, fidelity, and rapid signaling required for synaptic transmission.
T cell infiltration into the intestine occurs after priming and activation in the mesenteric lymph nodes and Peyer’s patches and subsequent trafficking via the blood circulation. We hypothesized that additionally to the vascular trafficking route, a fraction of T cells in the Peyer’s patches directly migrate into the adjacent lamina propria of the small intestine. To test this hypothesis, we employed a mouse model of acute Graft-versus-Host Disease to study the direct T cell migration from the Peyer’s patches to the adjacent lamina propria.
First, we analyzed the border of Peyer’s patches on histological sections and found that the Peyer’s patch is not enclosed by a capsule or basement membrane. Thus, the tissue architecture allows for direct access to the surrounding tissue. With whole-mount light sheet fluorescence microscopy we quantified a three-dimensional gradient of T cells around Peyer’s patches on day 2.5 and day 3 after transplantation. This gradient evened out at day 4 and day 6 when high numbers of T cells started to evenly infiltrate the intestine from the blood circulation. We confirmed that gradient-forming T cells around Peyer’s patches resided within the tissue parenchyma of the lamina propria and not inside lymphatic vessels.
To positively prove that the recently activated donor T cells around Peyer’s patches have egressed directly from that patch, we established a protocol for intravital photoconversion of T cells inside Peyer’s patches. 12 h after photoconversion inside a single Peyer’s patch, photoconverted T cells resided only around this particular Peyer’s patch and not elsewhere in the small intestine. This indicated that the T cells did not infiltrate via the blood but migrated to the adjacent lamina propria of the small intestine. Dynamic intravital two-photon microscopy revealed that these T cells next to the Peyer’s patch migrated in a random pattern. This suggested that these cells did not follow a positive chemoattractive gradient once they had reached the lamina propria. Laser-capture microdissection combined with RNA sequencing of the mucosa near the Peyer’s patch identified a wide range of migration-promoting factors. These included chemokines, co-stimulatory receptors and migration-associated intracellular molecules, which are candidates to promote this direct migration from Peyer’s patches.
Altogether, we demonstrate for the first time that additionally to the vascular trafficking route, a fraction of T cells migrates directly from the Peyer’s patch to the surrounding mucosa. This mechanism implies so far unrecognized regional specification of Peyer’s-patch-primed T cells. Our findings may impact treatment strategies to avoid intestinal inflammation or foster immunity after oral vaccination.
Gene expression and transfer of the genetic information to the next generation forms the basis of cellular life. These processes crucially rely on DNA, thus the preservation, transcription and translation of DNA is of fundamental importance for any living being. The general transcription factor TFIIH is a ten subunit protein complex, which consists of two subcomplexes: XPB, p62, p52, p44, p34, and p8 constitute the TFIIH core, CDK7, CyclinH, and MAT1 constitute the CAK. These two subcomplexes are connected via XPD. TFIIH is a crucial factor involved in both, DNA repair and transcription. The central role of TFIIH is underlined by three severe disorders linked to failure of TFIIH in these processes: xeroderma pigmentosum, Cockayne syndrome, and trichothiodystrophy. Only limited structural and functional data of TFIIH are available so far. Here, the model organism Chaetomium thermophilum was utilized with the aim to structurally and functionally characterize TFIIH. By combining the expression and purification of single TFIIH subunits with the co-expression and co-purification of dual complexes, a unique and powerful modular system of the TFIIH core subunits could be established, encompassing all proteins in high quality and fully functional. This system permits the step-wise assembly of TFIIH core, thereby making it possible to assess the influence of the intricate interaction network within TFIIH core on the overall enzymatic activities of TFIIH, which has not been possible so far. Utilizing the single subunits and dual complexes, a detailed interaction network of TFIIH core was established, revealing the crucial role of the p34 subunit as a central scaffold of TFIIH by linking the two proteins p44 and p52. Our studies also suggest that p62 constitutes the central interface of TFIIH to the environment rather than acting as a scaffold. TFIIH core complexes were assembled and investigated via electron microscopy. Preliminary data indicate that TFIIH adopts different conformational states, which are important to fulfill its functions in transcription and DNA repair. Additionally, a shortened construct of p62 was used to develop an easy-to-use, low cost strategy to overcome the crystallographic phase problem via cesium derivatization.
Kinetics and timing of IL-12 production by dendritic cells for Th1 polarization \(in\) \(vivo\)
(2020)
Dendritic cell (DC) based vaccines rely on the quality of DC maturation to induce antigen presentation, co-stimulation, lymph node migration and the release of heterodimeric IL-12p70 in case of T helper type-1 cell (Th1) polarization. In contrast, DCs that cannot secrete IL-12p70 (e.g. after cytokine cocktail maturation) readily induce Th1 cells when injected into mice and humans. Since it was also previously suggested that DCs are capable of activating other DCs in a bystander fashion, we tested here for the DC source of IL-12p70 for Th1 polarization in a murine DC vaccination model. Migration of the injected murine bone marrow-derived DCs (BM-DCs) was essential for antigen delivery to the lymph node. However, they contributed only partially to antigen presentation, and induced a non-polarized Th0 state of the cognate T cells producing IL-2 but no IFN-. Instead, endogenous dermal migratory XCR1+ cDC1s underwent re-programming by the injected BM-DCs to acquire bystander antigen presentation and IL-12 release for Th1 polarization in the lymph node. Genetic deficiency of migratory DCs and specifically of XCR1+ migratory DCs completely abolished Th1 priming. The kinetic of cell interactions in the draining lymph nodes appeared step-wise as i) injected DCs with cognate T cells, ii) injected DCs with bystander XCR1+ DCs, and iii) bystander XCR1+ DCs with T cells. The transcriptome of the bystander DCs showed a down-regulation of Treg and Th2/Th9 inducing genes, and up-regulation of genes required for Th1 instruction. Together, these data show that injected mature lymph node migratory BM-DCs direct T cell priming and bystander DC activation, but not Th1 polarization which is mediated by endogenous IL-12p70+ XCR1+ migratory bystander DCs. Our results are of importance for clinical DC-based vaccinations against tumors where endogenous DCs may be functionally impaired by chemotherapy.
Dem Endothel, welches die luminale Oberfläche aller Blutgefäße auskleidet, kommt eine wichtige Barrierefunktion zwischen Blut und Gewebe zu. Nur durch eine bedarfsgerechte Justierung dieser Barriere, die den Durchtritt von Molekülen und Zellen reguliert, kann die Gewebehomöostase aufrechterhalten werden. Dabei ist das Endothel nicht nur passive Barriere, sondern auch an dieser dynamischen Regulation aktiv beteiligt. Störungen oder Fehlregulationen dieser Prozesse führen zu Pathologien, z.B. Arteriosklerose.
Es ist seit längerem bekannt, dass Carcinoembryonic antigen–related cell adhesion molecule-1 (CEACAM1), ein Mitglied der Immunglobulin-Superfamilie, die Bildung und Morphogenese neuer Blutgefäße beeinflusst. Die spontane Entwicklung kleiner Arteriosklerose-ähnlicher Läsionen in CEACAM1 knockout (Cc1-/-) Mäusen zeigt, dass CEACAM1 auch für die Homöostase ausgereifter Blutgefäße von Bedeutung ist. Ziel dieser Dissertationsarbeit war daher, den Einfluss von CEACAM1 auf wesentliche Aspekte der Endothelfunktion in Aorten in situ bzw. in Endothelzellkulturen in vitro zu analysieren.
Es konnte zunächst gezeigt werden, dass CEACAM1-defiziente Endothelzellen im Vergleich zu Wildtyp (WT) Endothelzellen eine rundlichere Zellmorphologie mit meanderförmigen Zellgrenzen und interzellulären Lücken aufweisen. Diese morphologischen Unterschiede stimmen mit Befunden in situ an Aorten von WT und Cc1-/- Mäusen überein.
Weiterhin wurde eine Translokation der endothelialen NO-Synthase (eNOS) von der Zellmembran in den peri-nukleären Bereich bei CEACAM1-Defizienz festgestellt. Die erhobenen Daten bieten zwei mögliche Erklärungen dafür. Einerseits könnte CEACAM1 durch Interaktion mit eNOS als Membrananker fungieren. Daneben wiesen CEACAM1-defiziente Endothelzellen eine erhöhte Expression des Enzyms APT1 auf, welches eNOS depalmitoyliert. Die daraus resultierende, ebenfalls nachgewiesene geringere Palmitoylierung könnte auch zur verminderten Membran-lokalisation von eNOS beitragen.
Zur endothelialen Funktion gehört, die Adhäsion von Blutzellen an die Gefäßwand weitestgehend zu beschränken. CEACAM1-defiziente Endothelzellen zeigten im Vergleich zu WT Endothelzellen eine verstärkte Adhäsivität gegenüber murinen und humanen Monozyten. Ähnliche Unterschiede wurden für Aortenexplantate aus WT und Cc1-/- Mäusen festgestellt. Dies ist einerseits mit einer verstärkten Expression des Zelladhäsionsmoleküls ICAM-1 bei CEACAM1-Defizienz erklärbar. Darüber hinaus vermittelt die Glykokalyx anti-adhäsive Eigenschaften. Aus Vorbefunden war bekannt, dass die endotheliale Glykokalyx in der Aorta von Cc1-/- Mäuse reduziert ist. Im Rahmen dieser Arbeit konnte dies auf eine verstärkte Expression der Glykokalyx-degradierenden Enzyme MMP9, Chondroitinase sowie Hyaluronidase-2 in Cc1-/- Endothelzellen zurückgeführt werden.
Eine erhöhte Permeabilität stellt einen Indikator für ein dysfunktionales Endothel, eines der initialen Schritte in der Pathogenese der Arteriosklerose, dar. Zur Analyse der aortalen Permeabilität wurde ein modifizierter Miles-Assay etabliert. Unter Verwendung etablierter muriner Arteriosklerosemodelle konnte gezeigt werden, dass dieser Assay eine Störung der vaskulären Permeabilität bereits vor Auftreten makroskopischer Veränderungen zuverlässig detektiert.
Im Rahmen der folgenden Analysen an WT und Cc1-/- Mäusen zeigte sich ein altersabhängiger Effekt von CEACAM1 auf die Gefäßpermeabilität: Aorten von 3 Monate alten Cc1-/- Mäuse wiesen eine im Vergleich zum WT erhöhte Gefäßpermeabilität auf, welche wahrscheinlich Folge einer verzögerten Gefäßreifung ist. Im Alter von 9 Monaten zeigte sich dagegen ein entgegengesetztes Bild. Dies wurde auf eine verstärkte Expression des die Barriere schädigenden Inflammationsmediators TNF-α in 9 Monate alten WT Mäusen zurückgeführt.
Außerdem modulierte CEACAM1 die TNF-α-vermittelte Lockerung der endothelialen Barriere, indem es die Phosphorylierung von Adherens Junction Proteinen beeinflusste. Basal stabilisierte CEACAM1 die endotheliale Barriere durch Hemmung der Phosphorylierung von Caveolin-1, welches Adherens Junctions destabilisiert. Unter Einfluss von TNF-α war CEACAM1 verstärkt im Bereich von Adherens Junctions lokalisiert und rekrutierte dort Src-Kinase. Src-Kinase wiederum destabilisierte Adherens Junctions durch Phosphorylierung von β-Catenin, was in verstärkter Gefäßpermeabilität resultierte. Dagegen führte TNF-α in CEACAM1-defizienten Endothelzellen zu einer Dephosphorylierung von Caveolin-1 und β-Catenin, wodurch Adherens Junctions und damit die endotheliale Barriere stabilisiert wurden. Diese CEACAM1-abhängige differenzielle Regulation der Stabilität von Adherens Junctions unter TNF-α trägt wahrscheinlich maßgeblich zu den Unterschieden der vaskulären Permeabilität in 3 bzw. 9 Monate alten WT und Cc1-/- Mäusen bei.
Zusammenfassend konnte im Rahmen dieser Arbeit nachgewiesen werden, dass CEACAM1 zentrale Funktionen des Endothels und hierüber die Homöostase reifer Gefäße beeinflusst. Da eine Expression von CEACAM1 auch in arteriosklerotischen Plaques nachgewiesen werden konnte, soll in weiteren Untersuchungen auch der Beitrag von CEACAM1 zur arteriosklerotischen Plaquebildung analysiert werden.
Frizzled (FZD) are highly conserved receptors that belong to class F of the G protein-coupled receptor (GPCR) superfamily. They are involved in a great variety of processes during embryonic development, organogenesis, and adult tissue homeostasis. In particular, FZD5 is an important therapeutic target due to its involvement in several pathologies, such as tumorigenesis. Nevertheless, little is known regarding the activation of FZD receptors and the signal initiation, and their GPCR nature has been debated. In order to investigate the activation mechanism of these receptors, FRET (Förster Resonance Energy Transfer)-based biosensors for FZD5 have been developed and characterized. A cyan fluorescent protein (CFP) was fused to the C-terminus of the receptor and the specific FlAsH-binding sequence (CCPGCC) was inserted within the 2nd or the 3rd intracellular loop. Single-cell FRET experiments performed using one of these sensors, V5-mFZD5-FlAsH436-CFP, reported structural rearrangements in FZD5 upon stimulation with the endogenous ligand WNT-5A. These movements are similar to those observed in other GPCRs using the same technique, which suggests an activation mechanism for FZD reminiscent of GPCRs. Furthermore, stimulation of the FZD5 FRET-based sensor with various recombinant WNT proteins in a microplate FRET reader allowed to obtain concentration-response curves for several ligands, being possible to distinguish between full and partial agonists. This technology allowed to address the selectivity between WNTs and FZD5 using a full-length receptor in living cells. In addition, G protein FRET-based sensors revealed that WNT-5A specifically induced Gαq activation mediated by FZD5, but not Gαi activation. Other WNT proteins were also able to induce Gαq activation, but with lower efficacy than WNT-5A. In addition, a dual DAG/calcium sensor further showed that WNT-5A stimulation led to the activation of the Gαq-dependent signaling pathway mediated by FZD5, which outcome was the activation of Protein Kinase C (PKC) and the release of intracellular calcium. Altogether, these data provide evidence that the activation process of FZD5 resembles the general characteristics of class A and B GPCR activation, and this receptor also mediates the activation of the heterotrimeric Gαq protein and its downstream signaling pathway. In addition, the FZD5 receptor FRET-based sensor provides a valuable tool to characterize the pharmacological properties of WNTs and other potential ligands for this receptor.
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.
Investigation of dynamic processes of prototypical class A GPCRs by single-molecule microscopy
(2020)
In this work, two projects were pursued.
In the first project, I investigated two different subtypes of opioid receptors, which play a key role as target for analgesia. A set of subtype specific fluorescent ligands for μ opioid receptor (MOR) and δ opioid receptor (DOR) was characterised and used to gain insights into the diffusion behaviour of those receptors. It was shown that the novel ligands hold photophysical and pharmacological properties making them suitable for single-molecule microscopy. Applying them to wild-type receptors expressed in living cells revealed that both sub-types possess a heterogeneous diffusion behaviour. Further- more, the fluorescent ligands for the MOR were used to investigate homodomerisation, a highly debated topic. The results reveal that only ≈ 5 % of the receptors are present as homodimers, and thus the majority is monomeric. G-protein coupled receptors (GPCRs) play a major role as drug targets. Accordingly, understanding the activation process is very important. For a long time GPCRs have been believed to be either active or inactive. In recent years several studies have shown, that the reality is more complex, involving more substates. [1, 2, 3, 4] In this work the α 2A AR was chosen to investigate the activation process on a single-molecule level, thus being able to distinguish also rare or short-lived events that are hidden in ensemble mea- surements. With this aim, the receptor was labelled intracellular with two fluorophores using supported membranes. Thus it was possible to acquire movies showing qualita- tively smFRET events. Unfortunately, the functionality of the used construct could not be demonstrated. To recover the functionality the CLIP-tag in the third intracellular loop was replaced successfully with an amber codon. This stop codon was used to insert an unnatural amino acid. Five different mutants were created and tested and the most promising candidate could be identified. First ensemble FRET measurements indicated that the functionality might be recovered but further improvements would be needed. Overall, I could show that single-molecule microscopy is a versatile tool to investigate the behaviour of typical class A GPCRs. I was able to show that MOR are mostly monomeric under physiological expression levels. Furthermore, I could establish intra- cellular labelling with supported membranes and acquire qualitative smFRET events.