Refine
Has Fulltext
- yes (62)
Is part of the Bibliography
- yes (62)
Year of publication
- 2014 (62) (remove)
Document Type
- Doctoral Thesis (62)
Keywords
- T-Lymphozyt (8)
- Maus (6)
- Thrombozyt (5)
- Escherichia coli (3)
- Structural Biology (3)
- Thrombose (3)
- Transkriptionsfaktor (3)
- Arteriosklerose (2)
- Aufmerksamkeits-Defizit-Syndrom (2)
- Blutstillung (2)
Institute
- Graduate School of Life Sciences (62) (remove)
Sonstige beteiligte Institutionen
In this work we wanted to investigate the role of NFATc1 in lymphocyte physiology and in pathological conditions (eg. psoriasis). NFATc1 is part of the signal transduction
pathways that regulates B cells activation and function. NFATc1 has different isoforms that are due to different promoters (P1 and P2), polyadenylation and alternative splicing. Moreover, we tried to elucidate the points of interactions between the NFAT and the NF-κB pathways in
activated B-cell fate. NFAT and NF-κB factors share several properties, such as a similar mode of induction and architecture in their DNA binding domain. We used mice which over-express a constitutive active version of NFATc1/α in their B cells with -or without- an ablated IRF4. IRF4 inhibits cell cycle progression of germinal center B cell-derived Burkitt’s lymphoma cells and
induces terminal differentiation toward plasma cells. Our experiments showed that a ‘double hit’ in factors affecting B cell activation (NFATc1 in this case) and late B cell Differentiation (IRF4 in this case) alter the development of the B cells, lead to increase in their numbers and increase in stimulation induced proliferation. Therefore, the overall picture indicates a link between these 2 genes and probable carcinogenic alterations that may occur in B cells.
We also show that in splenic B cells, c-Rel (of the NF-κB canonical pathway) Support the induction of NFATc1/αA through BCR signals. We also found evidence that the lack of NFATc1 affects the expression of Rel-B (of the NF-κB non-canonical pathway). These data suggest a tight interplay between NFATc1 and NF-κB in B cells, influencing the competence of B cells and their functions in peripheral tissues.
We also used IMQ-induced psoriasis-like inflammation on mice which either lack NFATc1 from B cell. Psoriasis is a systemic chronic immunological disease characterized
primarily by abnormal accelerated proliferation of the skin keratinocytes. In psoriasis, the precipitating event leads to immune cell activation. Our experiments showed that NFATc1 is needed for the development of psoriasis. It also showed that IL-10 is the link that enables NFAT
from altering the B cell compartment (eg Bregs) in order to affect inflammation. The important role of B cell in psoriasis is supported by the flared up psoriasis-like inflammation in mice that lack B cells. Bregs is a special type of B cells that regulate other B cells and T cells; tuning the immunological response through immunomodulatory cytokines.
Desmogleine (Dsg1-4) sind transmembranäre Adhäsionsproteine aus der Gruppe der desmosomalen Cadherine, die Zell-Zell-Kontakte zwischen benachbarten Keratinozyten der Epidermis in und außerhalb von Desmosomen vermitteln. Eine durch Autoantikörper induzierte Störung dieser Haftstrukturen (hauptsächlich Dsg1 und Dsg3) resultiert im klinischen Bild der Pemphigus-Erkrankung. Dieses ist makroskopisch durch eine Blasenbildung der Haut gekennzeichnet. Auf zellulärer und molekularbiologischer Ebene lassen sich im Falle von Pemphigus vulgaris (PV) eine Retraktion des Zytoskeletts, eine Reduzierung der Dsg3-Proteinmenge und eine Aktivierung verschiedener Signalwege u.a. der p38MAPK nachweisen. PV eignet sich daher als Modellerkrankung zur Untersuchung der Bedeutung desmosomaler Cadherine für die interzelluläre Adhäsion in Keratinozyten. Durch zahlreiche Studien wurde die wichtige Funktion von Dsg3 als Adhäsionsprotein bestätigt und eine Beteiligung an der Modulation zahlreicher Signalwege, die in Zusammenhang mit der Pemphigus-Pathogenese stehen, untersucht. Im Gegensatz dazu konnte bisher keine spezifische Funktion des desmosomalen Cadherins Dsg2 in der Epidermis identifiziert werden. Dsg2 kommt als einziges Desmoglein in allen Geweben vor, die Desmosomen enthalten, und ist auch an den Zell-Zell-Kontakten im Myokard und Darmepithel vorhanden, wo kein Dsg1 und Dsg3 exprimiert werden. Hier nimmt Dsg2 eine wichtige Rolle als Adhäsionsmolekül und als Regulator interzellulärer Prozesse ein.
In dieser Arbeit wurde daher vergleichend die Bedeutung von Dsg2 und Dsg3 für die interzelluläre Adhäsion in Keratinozyten im Hinblick auf ihre Funktion als Adhäsionsmolekül und als Rezeptormolekül, speziell im p38MAPK-Signalweg, untersucht. Wesentliche Unterschiede zeigten sich zunächst in der Lokalisation beider Proteine. Während sich die in der Literatur beschriebene Lokalisation von Dsg3 im Stratum basale und spinosum der Epidermis bestätigte, konnte Dsg2 nur am Haarfollikel nachgewiesen werden. In differenzierten HaCaT-Zellen, einer Keratinozyten-Zelllinie war Dsg2 eher punktförmig und Dsg3 nahezu linear an der Zellmembran lokalisiert. Dementsprechend ließ sich Dsg2 nach Triton-vermittelter Zellfraktionierung in ähnlicher Verteilung zwischen der Zytoskelett-gebunden und -ungebundenen Fraktion nachweisen wie Desmoplakin, das an der Zellemembran ausschließlich in Desmosomen vorkommt. Durch Dsg-spezifische Antikörper, deren inhibitorische Eigenschaft in zellfreien AFM-Studien nachgewiesen wurde, konnte nur eine Inhibierung der Dsg3- und nicht der Dsg2-vermittelten Adhäsion in HaCaT-Zellen erzielt werden. Im Gegensatz dazu induzierte derselbe Dsg2-spezifische Antikörper einen signifikanten Haftungsverlust in einer Darmepithelzelllinie. Die mittels siRNA induzierte Reduzierung der Dsg2-Proteinmenge führte jedoch nur unter erhöhter mechanischer Belastung der Zellen zu einem Adhäsionsverlust. Die simultane Modulation der Funktion von Dsg2 und Dsg3 mittels siRNA bzw. der Inkubation Dsg2-depletierter Zellen mit AK23, einem inhibitorischen Dsg3-spezifischen Antikörper, resultierte in einem drastischen, teilweise p38MAPK-abhängigen, Adhäsionsverlust. Dieser Befund lieferte erste Hinweise auf eine kompensatorische Funktion von Dsg2 bei eingeschränkter Dsg3-vermittelter Haftung in Keratinozyten. Um dies näher zu untersuchen, wurde die Verteilung von Dsg2 an der Zellemembran Dsg3-depletierter HaCaT-Zellen untersucht. Der Verlust von Dsg3 resultierte hierbei in einer Zunahme und Linearisierung der Dsg2-Membranfärbung, was die Hypothese einer kompensatorischen Funktion im Falle einer Beeinträchtigung der Dsg3-Funktion bekräftigt. Um die Funktion von Dsg2 unter dieser Bedingung gezielter zu untersuchen, wurde das transgene Dsg3-Mausmodell eingesetzt und primäre Keratinozyten aus neonatalen Dsg3-defizienten und nicht-Dsg3-defizienten Geschwistertieren isoliert. Entsprechend der vorhergehenden Befunde zeigten die Dsg3-defizienten Zellen eine deutliche Zunahme der Dsg2-Membranlokalisation sowie zusätzlich eine erhöhte DSG2-mRNA-Expression, allerdings bei unveränderten Dsg2-Proteinmengen.
Weiterhin wurde die Funktion von Dsg2 und Dsg3 als Modulator des p38MAPK-Signalweges näher untersucht. Der für Dsg3 identifizierte Komplex mit der phosphorylierten Form der p38MAPK (p-p38MAPK) konnte für Dsg2 nicht nachgewiesen werden. Ebenso führte eine Reduzierung der Dsg2-Proteinmenge, im Gegensatz zur Reduzierung der Dsg3-Proteinmenge, nicht zur Aktivierung der p38MAPK und einer Retraktion des Zytoskeletts. Der direkte Zusammenhang zwischen einem Dsg3-Funktionsverlust und der p38MAPK-Aktivität ließ sich dadurch bestätigen, dass sowohl die Keratinretraktion als auch der Haftungsverlust nach Dsg3-Depletion durch den Einsatz eines p38MAPK-spezifischen Inhibitors partiell inhibierbar waren. Auch in primären Keratinozyten mit vollständiger Dsg3-Defizienz verbesserte eine p38MAPK-Inhibierung die Zelladhäsion. Ebenso wurde in Dsg3-defizienten Zellen im Vergleich zu Zellen mit endogener Dsg3-Expression eine deutliche Lokalisation der p-p38MAPK an der Zellmembran nachgewiesen, was darauf schließen lässt, dass möglicherweise in Abwesenheit von Dsg3 andere Membranproteine an der Regulation dieses Signalweges beteiligt sind. Zusammenfassend wurde in dieser Arbeit eine bisher nicht beschriebene Funktion von Dsg2 als Kompensationspartner für Dsg3 in Keratinozyten identifiziert und die Rolle von Dsg3 als Modulator des p38MAPK-Signalweges näher charakterisiert.
Due to the rotation of the earth in the solar system all inhabitants of our planet are exposed to regular environmental changes since more than 3.5 billion years. In order to anticipate these predictable changes in the environment, evolutionarily conserved biological rhythms have evolved in most organisms – ranging from ancient cyanobacteria up to human beings – and also at different levels of organization – from single cells up to behavior. These rhythms are endogenously generated by so called circadian clocks in our body and entrained to the 24 h cycle by external timing cues. In multi-cellular organisms the majority of the cells in the body is equipped with such an oscillator. In mammals, the circadian system is structured in a hierarchical fashion: A central pacemaker resides in the bilateral suprachiasmatic nucleus (SCN) of the hypothalamus, while subsidiary peripheral clocks exist in nearly every tissue and organ.
In contrast to the aforementioned recurrent environmental changes most organisms are also exposed to unpredictable changes in the environment. In order to adapt to these sudden alterations the acute activation of the stress response system, involving the hypothalamic-pituitary-adrenal (HPA) axis and the sympathetic nervous system, displays a fundamental survival mechanism. However, if activation of the stress system becomes chronic, devastating somatic and affective disorders might be the consequence.
At first glance, the circadian and the stress system seem to represent two separate bodily control systems that are involved in adaptation to predictable and unpredictable stimuli, respectively. However, both systems are fundamental for survival, and thus, communicate with each other at various levels. Early studies already demonstrated that stressor exposure at different times of the diurnal cycle generates different stress effects, whereupon the type of stressor plays a pivotal role. Moreover, alterations in the SCN and peripheral circadian clocks could be shown following stressor exposure.
In cooperation with various co-workers, I investigated whether the stress responsiveness is modulated by the endogenous clock in a diurnal fashion and whether repeated psychosocial stress impacts the circadian clock depending on the time of day of stressor exposure. Therefore, male C57BL/6 mice were repeatedly exposed to a psychosocial stressor, either at the beginning of the inactive/light phase (SDL mice) or active/dark phase (SDD mice).
Subsequently, different behavioral, physiological/endocrine and immunological/ inflammatory consequences were assessed. It could be shown that the effects of repeated psychosocial stressor exposure strongly depend on the time of day of stressor exposure. The present results demonstrate that repeated daily stressor exposure has a more negative outcome when applied during the active/dark phase compared to the inactive/light phase. Stressor exposure during the active phase resulted in a loss of general activity, decreased interest in an unfamiliar conspecific, a shift towards a more pro-inflammatory body milieu, and rhythm disturbances in plasma hormones, all representing well-accepted hallmarks of depression. In contrast, C57BL/6 mice exposed to the stressor in their inactive phase exhibited minor physiological alterations that might prevent the formation of the maladaptive consequences mentioned above, thus representing beneficial adaptations.
The second focus of this thesis was put on the investigation of the effects of repeated psychosocial stressor exposure at different times of the light-dark cycle on various levels of the circadian system. An increased expression of the PERIOD2 (PER2) protein, which represents an essential core clock component, could be found in the SCN of mice repeatedly exposed to the stressor during their active phase. In consistence with the alterations in the central circadian pacemaker, the daily rhythm of different hormones and the activity rhythm were considerably affected by SDD. Mice exposed to the psychosocial stressor in their active phase showed a shifted, or absent, rhythm of the hormones corticosterone and leptin. Moreover, their activity was found to be phase-delayed, which seems to be attributable to the Period (Per) gene since Per1/Per2 double-mutants still exhibited their normal activity rhythm following 19 days of stressor exposure during the active phase. In contrast, a phase-advance in the peripheral adrenal gland clock could be seen in C57BL/6 mice subjected to the stressor during their inactive phase. This phase-shift might be required for maintaining the normal rhythmicity in hormonal release and activity.
It has previously been suggested that activation of the HPA axis upon stressor exposure at different times of the light-dark cycle is depending on whether the stressor is of physical or psychological nature. Data from the HPA axis analysis now refine previous findings, indicating that psychosocial stressors also modulate HPA axis responses based on the time of day of stressor presentation. The present results demonstrate that HPA axis activity was reduced following repeated stressor exposure during the active phase. It is reasonable to speculate that this reduced basal activity of the stress system represents a failure in HPA axis adjustment, which could contribute to the negative consequences of repeated psychosocial stressor exposure during the dark phase.
Taken together, it can be concluded that the endogenous clock in mice modulates the stress responsiveness in a circadian fashion and that repeated psychosocial stressor exposure affects the biological clock depending on the time of day of stressor presentation. Thereby, stressor exposure during the active phase results in a more negative outcome as compared to stressor experience during the inactive phase. It is assumed that the interaction between the circadian clock and the stress system is a complex issue that might ensure that the endogenous clock does not get out of synchrony in any order.
Theories of attention deficit hyperactivity disorder (ADHD) aetiology have placed a focus on impaired behavioural inhibition presumably leading to executive function (EF) deficits. Neuroimaging studies report neurophysiological findings consistent with these hypothesised impairments, and investigations of functional brain activation from a network perspective report hypoactivation in the frontoparietal network as well as hyperactivation in the dorsal attention network. Studies investigating the acute effects of stimulant medication on EF show an improvement on behavioural EF measures including working memory. In addition, methylphenidate (MPH) was shown to up-regulate the task-positive/ frontoparietal network in children and adolescents with ADHD. So far, there are only few studies investigating the impact of ADHD on behavioural and neurophysiological EF measures as well as the effect of several weeks of stimulant medication in adult patients.
The importance of the catechol-O-methyltransferase (COMT) enzyme for subcortical and cortical dopaminergic and noradrenergic functioning furthermore led to studies investigating a potential interactive impact of COMT genotype and ADHD on neuropsychological functioning, with a particular focus on working memory. The results of these studies were very heterogeneous. In addition, as none of the studies compared the results of ADHD patients to those of a healthy control group, possible differential effects of COMT in patients and healthy controls could not be examined.
The aim of this dissertation was to investigate selective attention properties of the central executive component during a working memory task and to transfer this task to fMRI. A third study then aimed to investigate the effects of adult ADHD (aADHD), MPH, and COMT genotype on working memory with a particular focus on activation of the task-positive network during the analysis of the fMRI data.
The first study (EEG) could replicate and extend the results from previous research. This study could furthermore connect the overall activation in frontal areas to suppression efficiency in posterior visual areas as well as establish the impact of hyperactive/ impulsive ADHD symptoms on task performance. The second study (fMRI) allowed the successful transfer of the paradigm to fMRI, and the further replication and extension of previous findings. In addition, this study showed the sensitivity of the task to the effects of the COMT genotype. The third study (fMRI) was one of the first studies that exploratorily investigated the effects COMT in a sample of aADHD patients and a comparable healthy control group. This study showed an interactive effect of these two factors on neuropsychological measures as well as on fMRI activation during a classic n-back working memory task. In addition, this task led to more activation in the task-positive network of the aADHD group compared to a healthy control group in the absence of performance differences, pointing towards compensatory activation in the aADHD group. Furthermore, activation in the frontal cortex was increased in patients taking MPH compared to a placebo. The fMRI data from the selective attention task moreover showed decreased activation in the right DLPFC of the patient group, which was associated with reduced suppression efficiency across all participants. The clinical effect of MPH in the third study was visible but did not reach significance, which is probably attributable to a lack of experimental power.
The studies in this dissertation could successfully replicate and extend previous findings. A goal for future studies should be the further investigation of the interactive effects of COMT genotype and aADHD on neuropsychological test results and fMRI activation, but also on medication response and adverse effects. In this context, the adaptation of a network perspective during the analysis of fMRI data seems to be the best way to detect existing between-group differences.
Die geplante Ausrottung der Masern bis 2020 und die damit eventuell einhergehende Beendigung der Masernimpfung könnten die Voraussetzungen dafür schaffen, dass andere Morbilliviren, wie beispielsweise das Hundestaupevirus (CDV), einen Wirtswechsel zum Menschen vollbringen könnten. CDV ist ein hoch ansteckendes Pathogen und besitzt einen weiten Wirtstropismus, der sich aktuell immer weiter ausbreitet. Im Gegensatz dazu kann das Masernvirus (MV) nahezu ausschließlich Menschen und nur sehr bedingt wenige Affenarten infizieren.
In dieser Doktorarbeit konnte gezeigt werden, dass eine Adaptierung des rekombinanten wildtypischen CDV-Stammes CDV-75/17red an den humanen Rezeptor SLAM (signaling lymphocytic activation molecule, CD150) reproduzierbar und innerhalb weniger Passagen erfolgt. Bei der Adaptierung an das humane SLAM ist dabei nur eine Mutation in dem Gen für das virale Hämagglutinin notwendig. Diese Mutation an Position 8697 von A zu G im viralen Genom (Aminosäure D540G im Hämagglutinin) konnte reproduzierbar detektiert werden, obwohl veröffentlicht wurde, dass unterschiedliche Mutationen im Hämagglutinin verschiedener CDV-Stämme eine SLAM-Adaptierung ermöglichen. Die Mutation D540G im Hämagglutinin des humanen SLAM-adaptierten CDV-A75/17red kompensiert eine negative Ladung der Aminosäure 71E, die speziesspezifisch im humanen SLAM vorhanden ist. Durch Wachstumskinetiken konnte belegt werden, dass das an humanes SLAM-adaptierte CDV-A75/17red auch weiterhin das canine SLAM effizient verwendet. Ein weiterer Eintrittsrezeptor, humanes Nectin4, konnte mit demselben CDV-Stamm ohne adaptive Mutation in den viralen Hüllproteingenen benutzt werden.
Wachstumskurven auf verschiedenen humanen B-Lymphozyten Zelllinien zeigen allerdings, dass eine alleinige Adaptierung an die humanen Wirtszellrezeptoren, für eine effiziente Virusreplikation, nicht ausreicht. Damit das CDV die Speziesbarriere durchbrechen kann, muss offenbar ein weiterer Adaptierungsprozess an die humanen Wirtszellen erfolgen, der voraussichtlich mit umfangreicheren Mutationen des viralen Genoms einhergehen würde.
Diese Ergebnisse unterstreichen, dass intrinsische Faktoren und das angeborene Immunsystem eine wichtige Barriere bilden und den Menschen vor einer CDV-Infektion schützen. Allerdings würde eine Fortführung der MV-Impfung auch nach Ausrottung der Masern, aufgrund der Kreuzreaktivität gegen andere Morbilliviren, den Schutz vor einer möglichen Adaptierung eines Morbillivirus, wie CDV, an den Menschen deutlich verstärken.
Synapsins are conserved synapse-associated hosphoproteins involved in the fine regulation of neurotransmitter release. The aim of the present project is to study the phosphorylation of synapsins and the distribution of phospho-synapsin in the brain of Drosophila melanogaster.
Three antibodies served as important tools in this work, a monoclonal antibody (3C11/α-Syn) that recognizes all known synapsin isoforms and two antisera against phosphorylated synapsin peptides (antiserum PSyn(S6) against phospho-serine 6 and antiserum PSyn(S464) against phospho-serine 464). These antisera were recently generated in collaboration with Bertram Gerber and Eurogentec. ...
The integrity of our genome is continuously endangered by DNA damaging factors. Several cellular mechanisms have evolved to recognize and remove different types of DNA lesions. Despite the wealth of information on the three-dimensional structure and the catalytic mechanism of DNA repair enzymes, the essential process of target site search and identification remains more elusive. How can a small number of repair proteins find and detect the rare sites of damage rapidly and efficiently over an excess of millions of undamaged bases?
To address this pivotal question in DNA repair, I focused on the central players from the two DNA damage excision repair pathways in my studies: nucleotide excision repair (NER) and base excision repair (BER). As examples for completely different approaches of damage search, recognition and verification, I compared the NER protein Xeroderma pigmentosum group D (XPD) with the BER proteins human thymine DNA glycosylase (hTDG) and human 8-oxoguanine glycosylase (hOgg1).
In particular, the single molecule approach of atomic force microscopy (AFM) imaging and complementary biochemical and biophysical techniques were applied. I established a simple, optimized preparation approach, which yields homogeneous and pure samples of long (several hundreds to thousands of base pairs) DNA substrates suitable for the AFM studies with DNA repair proteins. Via this sample preparation, a single target site of interest can be introduced into DNA at a known position, which allows separate analysis of specific protein-DNA complexes bound to the lesion site and nonspecific complexes bound to non-damaged DNA.
The first part of the thesis investigates the XPD protein involved in eukaryotic NER. In general, the NER mechanism removes helix-distorting lesions – carcinogenic UV light induced photoproducts, such as cyclobutane pyrimidine dimers (CPDs) as well as bulky DNA adducts. The 5’-3’ helicase XPD has been proposed to be one of the key players in DNA damage verification in eukaryotic NER, which is still a matter of hot debate. In the studies, I focused on XPD from the archaeal species Thermoplasma acidophilum (taXPD), which shares a relatively high sequence homology with the sequence of the human protein and may serve as a good model for its eukaryotic counterpart. Based on AFM experiments and accompanying DNA binding affinity measurements with the biosensor technology Biolayer Interferometry (BLI), a clear role of XPD in damage verification was deciphered. Specifically, the data suggested that the ATP-dependent 5’-3’ helicase activity of XPD was blocked by the presence of damage leading to stalled XPD-DNA damage verification complexes at the lesion sites.
Successful damage verification led to ATP-dependent conformational changes visible by a significant transition in DNA bend angles from ~ 50° to ~ 65° at the site of the bound protein. Remarkably, this DNA bend angle shift was observed both in the presence of ATP and ATPγs (non-hydrolyzable ATP analog) indicating that ATP-binding instead of ATP hydrolysis was sufficient to induce repair competent conformational changes of XPD. Most importantly, detailed protein binding position and DNA bend angle analyses revealed for the first time that XPD preferably recognizes a bulky fluorescein lesion on the translocated strand, whereas a CPD lesion is preferentially detected on the opposite, non-translocated strand. Despite the different recognition strategies for both types of damages, they share a common verification complex conformation, which may serve as a signal for the recruitment of further NER factors.
In the second part of the thesis, AFM imaging and a 2-Aminopurine fluorescence-based base-flipping assay were combined to investigate damage search and recognition by DNA glycosylases in BER. Exemplarily, I chose to study hTDG as a representative of the vast glycosylase family. hTDG excises thymine and uracil from mutagenic G:T and G:U mispairs contributing to cancer and genetic disease. The AFM data suggested that hTDG uses the intrinsic flexibility of G:T and G:U wobble pairs for initial damage sensing, while scanning DNA as a search complex (SC, slightly bent DNA). Remarkably, hTDG has been indicated to continuously switch between the search and interrogation conformation (IC, stronger bent DNA) during damage search. In the IC, target bases are interrogated by extrahelical base flipping, which is facilitated by protein-induced DNA bending and enhanced DNA flexibility at mismatches. AFM and fluorescence analyses revealed that the flipped base is stabilized via hTDG’s arginine finger. Correct target bases are perfectly stabilized within the enzyme’s catalytic pocket resulting in prolonged residence time and enhanced excision probability. To test for the generalizability of the proposed hTDG damage search model to BER glycosylases, identical studies were performed with a second glycosylase, hOgg1. The data on hOgg1, which removes structurally more stable 8-oxoguanine lesions, supported the hypothesis developed for lesion recognition by hTDG as a common strategy employed by BER glycosylases
Die Multiple Sklerose (MS) und ihr Tiermodell, die Experimentelle Autoimmune Enzephalomyelitis (EAE), sind Autoimmunerkrankungen des Zentralen Nervensystems (ZNS). Neben myelinspezifischen CD4+ T-Zellen tragen auch CD8+ T-Zellen zur Pathogenese dieser Erkrankungen bei. Allerdings ist die Rolle der CD8+ T-Zellen während der Induktionsphase der Erkrankung außerhalb des ZNS noch unklar. In dieser Arbeit wurde daher der Beitrag der CD8+ T-Zellen in der EAE der Lewis-Ratte näher untersucht.
Dazu wurde die Krankheitsaktivität der aktiven EAE in normalen Lewis-Ratten mit Tieren verglichen, in denen die CD8+ T-Zellen durch CD8-spezifische monoklonale Antikörper depletiert wurden. Die CD8-depletierten Tiere zeigten dabei eine verminderte Krankheitsaktivität im Vergleich zu den Kontrolltieren. Ebenso entwickelten CD8 knockout Ratten, die durch die Abwesenheit funktionsfähiger CD8+ T-Zellen gekennzeichnet sind, deutlich reduzierte Krankheitssymptome im Vergleich zu wildtypischen Tieren. Die reduzierte Krankheitsaktivität in den CD8-defizienten Tieren war von einer verminderten Infiltration von T-Zellen und Makrophagen in das ZNS begleitet. Zwar konnten aktivierte gpMBP-spezifische CD4+ T-Zellen in den drainierenden Lymphknoten von CD8-depletierten Ratten detektiert werden, diese produzierten jedoch in deutlich reduziertem Umfang pro-inflammatorische Zytokine wie beispielsweise Interferon-. Offensichtlich können in der aktiven EAE myelinspezifische CD4+ T-Zellen in Abwesenheit von CD8+ T-Zellen nicht vollständig zu Effektorzellen differenzieren und infolgedessen das ZNS nicht infiltrieren. Umgekehrt konnten nach adoptivem Transfer von voll ausdifferenzierten enzephalitogenen CD4+ Effektorzellen sowohl in normalen als auch CD8-defizienten Empfängertieren gleich starke Symptome einer AT-EAE beobachtet werden. Die Entfaltung des pathogenen Potentials voll ausgereifter CD4+ Effektorzellen scheint somit nicht von der Präsenz von CD8+ T-Zellen abzuhängen.
Mit Hilfe eines Ratten-IFN- ELISpots gelang erstmals die Detektion Interferon--produzierender gpMBP-spezifischer CD8+ T-Zellen in Tieren, die zuvor mit gpMBP immunisiert wurden. Zum direkten Nachweis von gpMBP-spezifischen CD8+ T-Zellen wurden RT1.Al-Ig Dimere generiert und mit verschiedenen gpMBP-Peptiden beladen. Tatsächlich konnten in den drainierenden Lymphknotenzellen von Ratten, die zuvor mit gpMBP in CFA immunisiert wurden, CD8+ T-Zellen detektiert werden, die gpMBP125-133-beladene RT1.Al-Ig Dimere erkennen.
Die Ergebnisse dieser Arbeit legen insgesamt den Schluss nahe, dass bei der EAE der Lewis-Ratte Interferon--produzierende CD8+ T-Zellen in der Peripherie mit myelinspezifischen CD4+ T-Zellen interagieren und damit deren Differenzierung zu ZNS-infiltrierenden Effektorzellen ermöglichen.
Platelet activation and aggregation are essential processes for the sealing of injured vessel walls and preventing blood loss. Under pathological conditions, however, platelet aggregation can lead to uncontrolled thrombus formation, resulting in irreversible vessel occlusion. Therefore, precise regulation of platelet activation is required to ensure efficient platelet plug formation and wound sealing but also to prevent uncontrolled thrombus formation. Rapid elevations in the intracellular levels of cations are a core signaling event during platelet activation. In this thesis, the roles of Ca2+ and Mg2+ channels in the regulation of platelet function were investigated.
Orai1, the major store-operated calcium (SOC) channel in platelets, is not only vital for diverse signaling pathways, but may also regulate receptor-operated calcium entry (ROCE). The coupling between the Orai1 signalosome and canonical transient receptor potential channel (TRPC) isoforms has been suggested as an essential step in the activation of store-operated calcium entry (SOCE) and ROCE in human platelets. However, the functional significance of the biochemical interaction between Orai and TRPC isoforms still remains to be answered. In the first part of this thesis, the functional crosstalk between Orai1 and TRPC6 was addressed. Orai1-mediated SOCE was found to enhance the activity of phospholipases (PL) C and D, to increase diacylglycerol (DAG) production and finally to regulate TRPC6-mediated ROCE via DAG, indicating that the regulation of TRPC6 channel activity seems to be independent of the physical interaction with Orai1. Furthermore, Orai1 and TRPC6 double deficiency led to a reduced Ca2+ store content and basal cytoplasmic Ca2+ concentrations, but surprisingly also enhanced ATP secretion, which may enhance Ca2+ influx via P2X1 and compensate for the severe Ca2+ deficits seen in double mutant platelets. In addition, Orai1 and TRPC6 were not essential for G protein-coupled receptor (GPCR)-mediated platelet activation, aggregation and thrombus formation.
Transient receptor potential melastatin-like 7 (TRPM7) contains a cytosolic serine/threonine protein kinase. To date, a few in vitro substrates of the TRPM7 kinase have been identified, however, the physiological role of the kinase remains unknown. In the second part of this thesis, mice with a point mutation which blocks the catalytic activity of the TRPM7 kinase (Trpm7KI) were used to study the role of the TRPM7 kinase in platelet function. In Trpm7KI platelets phosphatidylinositol-4,5-bisphosphate (PIP2) metabolism and Ca2+ mobilization were severely impaired upon glycoprotein (GP) VI activation, indicating that the TRPM7 kinase regulates PLC function. This signaling defect in Trpm7KI platelets resulted in impaired aggregate formation under flow and protected animals from arterial thrombosis and ischemic brain infarction. Altogether, these results highlight the kinase domain of TRPM7 as a pivotal signaling moiety implicated in the pathogenesis of thrombosis and cerebrovascular events.
TRAIL is a member of TNF superfamily and mediates apoptosis by binding to two DRs, TRAILR1 and TRAILR2. Despite the fact that there are other TRAILRs, TRAILR1 and TRAILR2 receive the major research interest due to their ability to trigger apoptosis and their possible use as targets in tumor therapy. Due to the potential advantages of TRAILR1- or TRAILR2-specific targeting, we investigated recently published TRAIL DR-specific mutants, one conferring specificity for TRAILR1 (TRAILmutR1) and one for TRAILR2 (TRAILmutR2). It was well proved in this work that TRAILmutR1 shows specific binding to TRAILR1 and no specific binding to TRAILR2. TRAILmutR2 vice versa shows specific binding to TRAILR2 and no significant binding to TRAILR1. Moreover, these mutants were able to induce caspase activation and cell death in a TRAILR1/2-specific manner. Moreover, the enhancement of TRAILR2-induced apoptosis by secondary oligomerization of soluble wild-type TRAIL was confirmed for the TRAILR2-specifc TRAIL mutant and similar findings were made with the TRAILR1-specific TRAIL mutant.
The soluble form of TRAIL exhibits weak apoptotic activity as compared to transmembrane TRAIL. Therefore, there is the challenge in clinical research to improve the activity of soluble TRAIL. A second strategy besides the above mentioned oligomerization to improve soluble TRAIL activity is anchoring of the molecule to the cell surface, e.g. through the genetic fusion with a scFv domain recognizing a cell surface antigen. In this work, we generated fusion proteins of TRAIL, TRAILmutR1 and TRAILmutR2 with a scFv recognizing CD40 (scFv:G28). Initially, we analyzed the functionality of both the TRAIL domain and the scFv:G28 domain of the corresponding fusion proteins. TRAIL functionality was well proved through its ability to induce cell death in TRAIL sensitive cells such as Jurkat cells, provided that scFv:G28-TRAIL fusion proteins were oligomerized by anti-Flag mAb M2. Concerning the scFv:G28 domain, the fusion proteins showed enhanced binding affinity to cell lines expressing CD40 as compared to their parental CD40-negative cells. Consistent with previous studies investigating TRAIL fusion proteins with other cell surface antigen-targeting scFvs, the scFv:G28 fusion proteins with TRAIL, TRAILmutR1 and TRAILmutR2 showed enhanced induction of cell death in a CD40-dependent manner. Moreover, our results revealed that these fusion proteins have a significant paracrine apoptotic effect on CD40-negative bystander cells upon anchoring to CD40-positive cells which are TRAIL resistant. Thus, the current work provides for the first time scFv fusion proteins of TRAIL and TRAILR1- and TRAILR2-specific TRAIL mutants with CD40-restricted activity. These fusion proteins provide the advantage of attenuating the off-target effects and the potential side effects of per se highly active TRAIL variants on one hand due to the CD40-binding dependent enhancement of activity and on the other hand due to the differential use of TRAILR1 and TRAILR2.
CD40 represents a tumor associated marker which is expressed on many tumor cells but also on immune cells. Therefore, the last part of this work focused on the analysis of the ability of scFv:G28-TRAIL fusion proteins to induce CD40 signaling both in tumor cells and also in immune cells. It turned out that the scFv:G28-TRAIL fusion proteins are able to induce CD40 signaling in CD40-positive tumor cells but especially also in immune cells such as iDCs leading to their maturation and further activation of immune responses.
Taken together, this work provides novel bifunctional scFv-TRAIL fusion proteins which combine the induction of apoptosis via TRAIL DR with stimulation of CD40 signaling which possibly enhances antitumor immunity.