@phdthesis{Busch2013, author = {Busch, Martin}, title = {Aortic Dendritic Cell Subsets in Healthy and Atherosclerotic Mice and The Role of the miR-17~92 Cluster in Dendritic Cells}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-71683}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Atherosclerosis is accepted to be a chronic inflammatory disease of the arterial vessel wall. Several cellular subsets of the immune system are involved in its initiation and progression, such as monocytes, macrophages, T and B cells. Recent research has demonstrated that dendritic cells (DCs) contribute to atherosclerosis, too. DCs are defined by their ability to sense and phagocyte antigens, to migrate and to prime other immune cells, such as T cells. Although all DCs share these functional characteristics, they are heterogeneous with respect to phenotype and origin. Several markers have been used to describe DCs in different lymphoid and non-lymphoid organs; however, none of them has proven to be unambiguous. The expression of surface molecules is highly variable depending on the state of activation and the surrounding tissue. Furthermore, DCs in the aorta or the atherosclerotic plaque can be derived from designated precursor cells or from monocytes. In addition, DCs share both their marker expression and their functional characteristics with other myeloid cells like monocytes and macrophages. The repertoire of aortic DCs in healthy and atherosclerotic mice has just recently started to be explored, but yet there is no systemic study available, which describes the aortic DC compartment. Because it is conceivable that distinct aortic DC subsets exert dedicated functions, a detailed description of vascular DCs is required. The first part of this thesis characterizes DC subsets in healthy and atherosclerotic mice. It describes a previously unrecognized DC subset and also sheds light on the origin of vascular DCs. In recent years, microRNAs (miRNAs) have been demonstrated to regulate several cellular functions, such as apoptosis, differentiation, development or proliferation. Although several cell types have been characterized extensively with regard to the miRNAs involved in their regulation, only few studies are available that focus on the role of miRNAs in DCs. Because an improved understanding of the regulation of DC functions would allow for new therapeutic options, research on miRNAs in DCs is required. The second part of this thesis focuses on the role of the miRNA cluster miR- 17~92 in DCs by exploring its functions in healthy and atherosclerotic mice. This thesis clearly demonstrates for the first time an anti-inflammatory and atheroprotective role for the miR17-92 cluster. A model for its mechanism is suggested.}, subject = {Aorta}, language = {en} } @phdthesis{Hofstetter2014, author = {Hofstetter, Christine}, title = {Inhibition of H3K27me-Specific Demethylase Activity During Murine ES cell Differentiation Induces DNA Damage Response}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-107023}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Stem cells are defined by their capacity to self-renew and their potential to differentiate into multiple cell lineages. Pluripotent embryonic stem (ES) cells can renew indefinitely while keeping the potential to differentiate into any of the three germ layers (ectoderm, endoderm or mesoderm). For decades, ES cells are in the focus of research because of these unique features. When ES cells differentiate they form spheroid aggregates termed "embryoid bodies" (EBs). These EBs mimic post- implantation embryonic development and therefore facilitate the understanding of developmented mechanisms. During ES cell differentiation, de-repression or repression of genes accompanies the changes in chromatin structure. In ES cells, several mechanisms are involved in the regulation of the chromatin architecture, including post-translational modifications of histones. Post-translational histone methylation marks became one of the best- investigated epigenetic modifications, and they are essential for maintaining pluripotency. Until the first histone demethylase KDM1A was discovered in 2004 histone modifications were considered to be irreversible. Since then, a great number of histone demethylases have been identified. Their activity is linked to gene regulation as well as to stem cell self-renewal and differentiation. KDM6A and KDM6B are H3K27me3/2-specific histone demethylases, which are known to play a central role in the regulation of posterior development by regulating HOX gene expression. So far less is known about the molecular function of KDM6A or KDM6B in undifferentiated and differentiating ES cells. In order to completely abrogate KDM6A and KDM6B demethylase activity in undifferentiated and differentiating ES cells, a specific inhibitor (GSK-J4) was employed. Treatment with GSK-J4 had no effect on the viability or proliferation on ES cells. However, in the presence of GSK-J4 ES cell differentiation was completely abrogated with cells arrested in G1-phase and an increased rate of apoptosis. Global transcriptome analyses in early-differentiating ES cells revealed that only a limited set of genes were differentially regulated in response to GSK-J4 treatment with more genes up- regulated than down-regulated. Many of the up-regulated genes are linked to DNA damage response (DDR). In agreement with this, DNA damage was found in EBs incubated with GSK-J4. A co-localization of H3K27me3 or KDM6B with γH2AX foci, marking DNA breaks, could be excluded. However, differentiating Eed knockout (KO) ES cells, which are devoid of the H3K27me3 mark, showed an attenuated GSK-J4- induced DDR. Finally, hematopoietic differentiation in the presence of GSK-J4 resulted in a reduced colony-forming potential. This leads to the conclusion that differentiation in the presence of GSK-J4 is also restricted to hematopoietic differentiation. In conclusion, my results show that the enzymatic activity of KDM6A and KDM6B is not essential for maintaining the pluripotent state of ES cells. In contrast, the enzymatic activity of both proteins is indispensable for ES cell and hematopoietic differentiation. Additionally KDM6A and KDM6B enzymatic inhibition in differentiating ES cells leads to increased DNA damage with an activated DDR. Therefore, KDM6A and KDM6B are associated with DNA damage and in DDR in differentiating ES cells.}, subject = {Embryonale Stammzelle}, language = {en} } @phdthesis{Bettaga2014, author = {Bettaga, Noomen}, title = {Bedeutung der NO-sensitiven Guanylyl Cyclase bei der Angiogenese und der Arteriogenese in der Maus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-111284}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Stickstoffmonoxid (NO) spielt eine wichtige Rolle bei Gef{\"a}ßremodelling-Prozessen wie Angiogenese und Arteriogenese. Die NO-Synthese im Gef{\"a}ßsystem wird haupts{\"a}chlich durch die endotheliale NO-Synthase (eNOS) gew{\"a}hrleistet. Sie kann durch verschiedene Faktoren wie Scherkr{\"a}fte und Zytokine wie der vaskul{\"a}re endotheliale Wachstumsfaktor (VEGF) reguliert werden. VEGF ist ein wichtiger Stimulator der Angiogenese und wird w{\"a}hrend dieses Prozesses hochreguliert. Die meisten physiologischen Effekte von NO werden durch die NO-sensitive Guanylyl-Cyclase (NO-GC) vermittelt. Als Hauptrezeptor f{\"u}r NO produziert die NO-GC den sekund{\"a}ren Botenstoff cyklisches Guanosinmonophosphat (cGMP) und f{\"u}hrt dadurch zur Stimulation der verschiedenen Effektoren wie z.B. der PKG. Ob die Wirkung von NO in Angiogenese und Arteriogenese ebenfalls durch NO-GC vermittelt wird, war bis zum Beginn dieser Arbeit noch unklar. Die NO-GC besteht aus zwei Untereinheiten (α und ß). Die Deletion der ß1-Untereinheit in M{\"a}usen resultiert in einer vollst{\"a}ndigen Knockout Maus (GCKO). Mithilfe des Cre-LoxP-Systems wurden zus{\"a}tzlich zellspezifische Knockout-M{\"a}use f{\"u}r glatte Muskelzellen (SMC-GCKO) und Endothelzellen (EC-GCKO) generiert. Um die Rolle der NO-GC in der Angiogenese und Arteriogenese zu untersuchen, wurden drei gut etablierte Methoden benutzt. Im ersten Teil des Projekts sollte die Expression der NO-GC in Endothelzellen untersucht werden. Zu diesem Zweck wurde die reverse Transkriptase-Polymerase-Kettenreaktion (RT-PCR) benutzt. Die Ergebnisse zeigen, dass die NO-GC in Endothelzellen der Lunge nur {\"a}ußerst gering wenig exprimiert ist. Durch den Aortenring-Assay wurde eine Rolle der NO-GC bei der VEGF-vermittelten Angiogenese festgestellt. Dabei zeigte sich eine st{\"a}rkere Angiogeneserate bei globaler Abwesenheit der NO-GC. Bei Fehlen der NO-GC ausschließlich in Endothelzellen zeigte sich kein Unterschied in den aussprossenden Aorten im Vergleich zu den Kontroll-Tieren. Dies zeigt, dass die NO-GC in Endothelzellen sehr wahrscheinlich keine Rolle bei der VEGF-vermittelten Angiogenese spielt. Im zweiten Teil wurde die Rolle der NO-GC bei der Angiogenese in einem in vivo-Modell untersucht. In dem Modell der Sauerstoff-induzierten-Retinopathie zeigten die GCKO-M{\"a}use eine verringerte Vaso-Obliteration, eine verlangsamte Angiogenese und eine erh{\"o}hte Tuft-Bildung. {\"A}hnliche Ergebnisse wurden bei den SMC-GCKO-Tieren beobachtet. EC-GCKO-M{\"a}use zeigten eine gegen{\"u}ber den Kontroll-Tieren unver{\"a}nderte Vaso-Obliteration, Angiogeneserate und Tuft-Bildung. Diese Ergebnisse lassen darauf schließen, dass die NO-GC in Endothelzellen keine Rolle spielt. Immunfluoreszenz-Aufnahmen zeigten die Expression von NO-GC in Perizyten der Gef{\"a}ßkapillaren der Mausretina. Daher k{\"o}nnte die NO-GC in diesem Zelltyp letztendlich f{\"u}r die Effekte bei den GCKO- und SMC-GCKO-Tieren verantwortlich sein. Im letzten Teil dieser Arbeit wurde eine Versuchsreihe unter Anwendung des Hinterlauf-Isch{\"a}mie-Modells durchgef{\"u}hrt. Hierbei entwickelten die Pfoten aller GCKO- und teilweise der SMC-GCKO-Tiere nach der Ligation der Femoralarterie eine Nekrose. Die Regeneration der Hinterl{\"a}ufe der EC-GCKO-Tiere nach der Operation verlief normal. Diese Ergebnisse schließen eine bedeutende Rolle der NO-GC in Endothelzellen aus, zeigen allerdings, dass die NO-GC in den glatten Muskelzellen essentiell f{\"u}r den Arteriogenese-Prozess ist. Zusammengefasst f{\"u}hrt die Deletion der NO-GC in glatten Muskelzellen und wahrscheinlich auch in Perizyten zur einer verlangsamten Angiogenese und Inhibierung der Arteriogenese.}, subject = {Guanylylcyclase}, language = {de} } @phdthesis{KarabegneeLee2014, author = {Karabeg, n{\´e}e Lee, Margherita Maria}, title = {Differences and Similarities in the Impact of Different Types of Stress on Hippocampal Neuroplasticity in Serotonin Transporter Deficient Mice}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-115831}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Stress has been shown to influence neuroplasticity and is suspected to increase the risk for psychiatric disorders such as major depression and anxiety disorders. Additionally, the short variant of the human serotonin transporter (5-HTT) length polymorphism (5-HTTLPR) is suggested to increase the risk for the development of such disorders. While stress as well as serotonergic signaling are not only discussed to be involved in the development of psychiatric disorders, they are also known to influence hippocampal adult neurogenesis (aN). Therefore, it has long been suspected that aN is involved in the etiology of these illnesses. The exact role of aN in this context however, still remains to be clarified. In the present doctoral thesis, I am introducing two different studies, which had been carried out to assess possible changes in neuroplasticity and behavior as a result of 5-HTT genotype by stress interactions. In both studies, animals of the 5-HTT knock-out (5-HTT-/-) mouse line were used, which have been found to exhibit increased anxiety- and depression-related behavior, an altered stress response and decreased aggressive behavior. The aim of the first study, the so-called Spatial Learning study, had been to evaluate whether mice with altered levels of brain 5-HT as a consequence of lifelong 5-HTT deficiency perform differently in two spatial memory tests, the Morris Water Maze (WM) and the Barnes Maze (BM) test prospectively differing in aversiveness. Mice of the Spatial Learning study were of male sex and six months of age, and where subjected to a total of 10 (BM) or 15 (WM) trials. My particular interest was to elucidate if there are genotype by treatment interactions regarding blood plasma corticosterone levels and, if neurobiological equivalents in the brain to the found behavioral differences exist. For this purpose I carried out a quantitative immunohistochemistry study, investigating stem cell proliferation (via the marker Ki67) and aN (via the immature neuron marker NeuroD), as well as expression of the two immediate early genes (IEGs) Arc and cFos as a markers for neuronal activity in the hippocampus. The aim of the second study, the chronic mild stress (CMS) study had been to evaluate whether the innate divergent depression-like and anxiety-like behavior of mice with altered levels of brain 5-HT as a consequence of 5-HTT-deficiency is altered any further after being subjected to a CMS paradigm. Two cohorts of one-year-old female mice had been subjected to a variety of unpredictable stressors. In order to exclude possible interfering influences of behavioral testing on corticosterone levels and the outcome of the quantitative immunohistochemistry study the first cohort had been behaviorally tested after CMS while the second one had remained behaviorally untested. The objective of my part of the study was to find out about possible genotype by treatment interactions regarding blood plasma corticosterone as well as regarding aN in the hippocampus of the mice that had been subjected to CMS. For this purpose I performed a quantitative immunohistochemistry study in order to investigate the phenomenon of adult neurogenesis (via Ki67, NeuroD and the immature neuron marker DCX). Both studies led to interesting results. In the CMS study, we could not replicate the increased innate anxiety- and depression-like behavior in 5-HTT-/- mice known from the literature. However, with regard to the also well documented reduced locomotor activity, as well as the increased body weight of 5-HTT-/- mice compared to their 5-HTT+/- and 5-HTT+/+ littermates, we could demonstrate that CMS leads to increased explorative behavior in the Open Field Test and the Light/Dark Box primarily in 5-HTT+/- und 5-HTT+/+ mice. The Spatial learning study revealed that increased stress sensitivity of 5-HTT-/- mice leads to a poorer performance in the WM test in relation to their 5-HTT+/+ and 5-HTT+/- littermates. As the performance of 5-HTT-/- mice in the less aversive BM was undistinguishable from both other genotypes, we concluded that the spatial learning ability of 5-HTT-/- mice is comparable to that of both other genotypes. As far as stress reactivity is concerned, the experience of a single trial of either the WM or the BM resulted in increased plasma corticosterone levels, irrespective of the 5-HTT genotype. After several trials 5-HTT-/- mice exhibited higher corticosterone concentrations compared with both other genotypes in both tests. Blood plasma corticosterone levels were highest in 5-HTT-/- mice tested in the WM indicating greater aversiveness of the WM and a greater stress sensitivity of 5-HTT deficient mice. In the CMS study, the corticosterone assessment of mice of cohort 1, which had undergone behavioral testing before sacrifice, resulted in significantly elevated corticosterone levels in 5-HTT-/- mice in relation to their 5-HTT+/+ controls. Contrary, corticosterone levels in mice of cohort 1, which had remained behaviorally untested, were shown to be elevated / increased after CMS experience regardless of the 5-HTT genotype. Regarding neuroplasticity, the Spatial Learning study revealed higher baseline levels of cFos- and Arc-ir cells as well as more proliferation (Ki67-ir cells) and higher numbers of neuronal progenitor cells (NeuroD-ir cells) in 5-HTT-/- compared to 5-HTT+/+ mice. Moreover, in 5-HTT-/- mice we could demonstrate that learning performance in the WM correlates with the extent of aN. The CMS study, in which aN (DCX-ir cells), has also been found to be increased in 5-HTT-/- mice compared to their 5-HTT+/+ littermates, yet only in control animals, did show hampered proliferation (Ki67-ir cells) in the hippocampus of all 5-HTT genotypes following CMS experience. Interestingly, the number of immature neurons (DCX-ir cells) was diminished exclusively in 5-HTT-/- mice in response to CMS. From the Spatial Learning study we concluded, that increased IEG expression and aN levels observed in the hippocampus of 5-HTT deficient mice can be the neurobiological correlate of emotion circuit dysfunction and heightened anxiety of these mice and that 5-HTT-/- animals per se display a "stressed" phenotype as a consequence of long-life 5-HTT deficiency. Due to the different age and sex of the mice in the two studies, they cannot be compared easily. However, although the results of the CMS study seem to contradict the results of the Spatial Learning study at the first glance, they do support the conclusion of the Spatial Learning study by demonstrating that although CMS does have an impact on 5-HTT-/- mice on the neurobiological level (e.g. manifesting in a decrease of DXC-ir cells following CMS) CMS experience cannot add onto their heightened inborn stress-level and is almost ineffective regarding further changes of the behavior of 5-HTT-deficient mice. I thus propose, that 5-HTT-/- mice as a result of lifelong altered 5-HT signaling display a stressed phenotype which resembles a state of lethargy and is paralleled by baseline heightened IEG expression and aN. It cannot be altered or increased by CMS, but it becomes most visible in stressful situations such as repeated spatial learning tests like the WM in which locomotor activity is required.}, subject = {Serotonin}, language = {en} } @phdthesis{Leicht2014, author = {Leicht, Hans Benno}, title = {Ph{\"a}notypische und funktionelle Charakterisierung Dendritischer Zellen aus der Mausmilz}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-111092}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Dendritische Zellen stellen eine Gruppe morphologisch, ph{\"a}notypisch und funktionell einzigartiger Leukozyten dar, die eine zentrale Rolle bei der Regu-lation des Immunsystems spielen. Als die mit Abstand effektivsten antigen-pr{\"a}sentierenden Zellen besteht ihre Funktion sowohl in der Ausl{\"o}sung als auch in der Verhinderung spezifischer Immunantworten, wobei diese F{\"a}higkeiten von ihrem jeweiligen Reifungsstadium abh{\"a}ngig sind. In der vorliegenden Arbeit wurden Dendritische Zellen aus Milzen von M{\"a}usen verschiedener Linien mit¬tels Dichtegradientenzentrifugation unter Verwendung von OptiPrep (Iodixanol) isoliert und ph{\"a}notypisch sowie funktionell charakterisiert. Die gewonnenen Zellsuspensionen bestanden durchschnittlich zu 41 Prozent aus residenten konventionellen Dendritischen Zellen. Die isolierten Dendritischen Zellen waren unabh{\"a}ngig von der untersuchten Mauslinie bis zu 26 Prozent CD8α-positiv und bis zu 81 Prozent CD8α-negativ. Dendritische Zellen wiesen unmittelbar nach der Zellgewinnung einen unreifen Ph{\"a}notyp auf mit starker Expression von MHC-Klasse-II, aber schwacher bis fehlender Expression der kostimulato¬rischen Molek{\"u}le CD80, CD86 und CD40. Eine 24- bzw. 48-st{\"u}ndige Kulti¬vierung in vitro f{\"u}hrte zur Reifung der Dendritischen Zellen mit Zunahme der Expression von MHC-Klasse-II, CD80, CD86 und CD40 um den Faktor 2 bis 4. Diese Zellen wiesen zudem immunstimulatorische Eigenschaften in der gemischten (allogenen) Leukozytenkultur auf. Dendritische Zellen der Mauslinie NMRInude exprimierten nach der In-vitro-Kultur ebenfalls zahlreiche Ober¬fl{\"a}chenmarker, darunter die Reifungsmarker. Die St{\"a}rke der Expression war jedoch um bis zu 50 Prozent schw{\"a}cher als bei Dendritischen Zellen der anderen Mauslinien. Dieser Befund weist auf potentielle Unterschiede zwischen Dendritischen Zellen der thymuslosen Mauslinie NMRInude und Dendritischen Zellen von Wildtyp-M{\"a}usen hin. Es wurde gezeigt, dass OptiPrep zur Isolierung Dendritischer Zellen aus M{\"a}usemilzen bei geringem Arbeitsaufwand und niedrigen Kosten verwendet werden kann. Die isolierten Dendritischen Zellen weisen die zu erwartenden ph{\"a}notypischen und funktionellen Eigenschaften auf und scheinen somit f{\"u}r den Einsatz in weiterf{\"u}hrenden Experimenten geeignet.}, subject = {Dendritische Zelle}, language = {de} } @phdthesis{Weirather2014, author = {Weirather, Johannes}, title = {Role of CD4+ T lymphocytes in cardiac wound healing and remodeling after experimental myocardial infarction in mice}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-107225}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Cardiac healing after myocardial infarction (MI) represents the cardinal prerequisite for proper replacement of the irreversibly injured myocardium. In contrast to innate immunity, the functional role of adaptive immunity in postinfarction healing has not been systematically addressed. The present study focused on the influence of CD4+ T lymphocytes on wound healing and cardiac remodeling after experimental myocardial infarction in mice. Both conventional and Foxp3+ regulatory CD4+ T cells (Treg cells) became activated in heart draining lymph nodes after MI and accumulated in the infarcted myocardium. T cell activation was strictly antigen-dependant as T cell receptor-transgenic OT-II mice in which CD4+ T cells exhibit a highly limited T cell receptor repertoire did not expand in heart-draining lymph nodes post-MI. Both OT-II and major histocompatibility complex class II-deficient mice lacking a CD4+ T cell compartment showed a fatal clinical postinfarction outcome characterized by disturbed scar tissue construction that resulted in impaired survival due to a prevalence of left-ventricular ruptures. To assess the contribution of anti-inflammatory Treg cells on wound healing after MI, the Treg cell compartment was depleted using DEREG mice that specifically express the human diphtheria toxin receptor in Foxp3-positive cells, resulting in Treg cell ablation after diphtheria toxin administration. In a parallel line of experiments, a second model of anti-CD25 antibody-mediated Treg cell immuno-depletion was used. Treg cell ablation prior to MI resulted in adverse postinfarction left-ventricular dilatation associated with cardiac deterioration. Mechanistically, Treg cell depletion resulted in an increased recruitment of pro-inflammatory neutrophils and Ly-6Chigh monocytes into the healing myocardium. Furthermore, Treg cell-ablated mice exhibited an adverse activation of conventional non-regulatory CD4+ and CD8+ T cells that showed a reinforced infiltration into the infarct zone. Increased synthesis of TNFα and IFNγ by conventional CD4+ and CD8+ T cells in hearts of Treg cell-depleted mice provoked an M1-like macrophage polarization characterized by heightened expression of healing-compromising induced NO synthase, in line with a reduced synthesis of healing-promoting transglutaminase factor XIII (FXIII), osteopontin (OPN) and transforming growth factor beta 1 (TGFβ1). Therapeutic Treg cell activation by a superagonistic anti-CD28 monoclonal antibody stimulated Treg cell accumulation in the infarct zone and led to an increased expression of mediators inducing an M2-like macrophage polarization state, i.e. interleukin-10, interleukin-13 and TGFβ1. M2-like macrophage differentiation in the healing infarct was associated with heightened expression of scar-forming procollagens as well as scar-stabilizing FXIII and OPN, resulting in improved survival due to a reduced incidence of left-ventricular ruptures. Therapeutic Treg cell activation and the induction of a beneficial M2-like macrophage polarization was further achieved by employing a treatment modality of high clinical potential, i.e. by therapeutic administration of IL-2/ anti-IL-2 monoclonal antibody complexes. The findings of the present study suggest that therapeutic Treg cell activation and the resulting improvement of healing may represent a suitable strategy to attenuate adverse infarct expansion, left-ventricular remodeling, or infarct ruptures in patients with MI.}, subject = {Antigen CD4}, language = {en} } @phdthesis{Bartlang2014, author = {Bartlang, Manuela Slavica}, title = {Timing is everything: The interaction of psychosocial stress and the circadian clock in male C57BL/6 mice}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-106486}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {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.}, subject = {Maus}, language = {en} } @phdthesis{Proft2014, author = {Proft, Florian Lukas Patrick}, title = {Molekulare Wirkmechanismen des Antidepressivums Venlafaxin - genetische Untersuchungen in Maus und Mensch}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-109201}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Depressive Erkrankungen verursachen sowohl das pers{\"o}nliche Leid der erkrankten Individuen als auch volkswirtschaftlichen Schaden durch krankheitsbedingten Arbeitsausfall und Belastung der Gesundheitsversorgungssysteme. Therapeutische Konzepte wie die Anwendung pharmakotherapeutischer Intervention sind in unterschiedlichem Maß von Erfolg gekr{\"o}nt. Zahlreiche somatische Faktoren wurden mit der {\"A}tiologie depressiver St{\"o}rungen in Verbindung gebracht. Die prim{\"a}r verfolgten pharmakologischen Ans{\"a}tze basieren nach wie vor auf Erkenntnissen aus der Mitte des vergangenen Jahrhunderts. In erster Linie setzt die Pharmakotherapie Substanzen ein, die die Wiederaufnahme monoaminerger Neurotransmitter (Serotonin, Noradrenalin, zum Teil auch Dopamin) aus dem synaptischen Spalt inhibieren und nach einer allerdings meist mehrw{\"o}chigen, regelm{\"a}ßigen Einnahme des Pr{\"a}parates zu einem R{\"u}ckgang der depressiven Symptomatik f{\"u}hren. Andererseits kann jedoch bei zahlreichen Erkrankten auch nach fortgesetzter Therapie mit verschiedenen Behandlungsans{\"a}tzen keine Remission verzeichnet werden und es stellt sich die Frage nach der Ursache dieser Diskrepanz. Im Fokus der vorliegenden Arbeit stand der als Antidepressivum eingesetzte selektive Serotonin- / Noradrenalin-Wiederaufnahme-Inhibitor Venlafaxin. Durch Blockade des pr{\"a}synaptischen Serotonin- und Noradrenalin-Transporters f{\"u}hrt Venlafaxin initial zu einer intensivierten Neurotransmission. Die Zielstrukturen von Venlafaxin sind der pr{\"a}synaptische Serotonin- und der Noradrenalin-Transporter, wobei aufgrund unterschiedlicher Affinit{\"a}t eine geringe Dosis beziehungsweise Konzentration als rein serotonerg betrachtet wird und bei einer hohen Dosis beziehungsweise Konzentration sowohl die Wiederaufnahme von Serotonin als auch Noradrenalin inhibiert wird. Es wurden in dieser Arbeit zwei Ziele verfolgt. Im ersten Teil wurde mittels Gen-expressionsuntersuchungen nach potentiellen Effektoren von Venlafaxin gesucht, um prinzipielle Mechanismen der antidepressiven Wirkung zu identifizieren und auf ihrer Basis die Entwicklung spezifischerer Intervention zu erm{\"o}glichen. Der zweite Teil beinhaltet eine pharmakogenetische Untersuchung am Menschen. Ziel war zu evaluieren, inwieweit die Expressionsaktivit{\"a}t von SLC6A2 und SLC6A4 und damit die pr{\"a}synaptische Transportkapazit{\"a}t in Kombination mit der Serumkonzentration aktiver Substanz als Pr{\"a}diktor des therapeutischen Effektes dienen kann. Die Kenntnis dieser Zusammenh{\"a}nge w{\"u}rde bei Vorliegen eines bestimmten Genotyps eine gezieltere Titration der individuell ben{\"o}tigten Konzentration erm{\"o}glichen und k{\"o}nnte die Effektivit{\"a}t der Therapie steigern. F{\"u}r die Genexpressionsuntersuchungen erhielten DBA/2-M{\"a}use {\"u}ber einen Zeitraum von 30 Tagen Venlafaxin in verschiedenen Dosierungen {\"u}ber das Trinkwasser. Anschließend wurden die Hippokampi der Tiere mittels genomweiter Microarray-Analyse hypothesenfrei auf zwischen den Dosisgruppen differentiell exprimierte Gene hin untersucht. Der Hippokampus wird als zentrales Element der Steuerung, Ausbildung und Ver{\"a}nderung von Verhaltensmustern gesehen. Signifikant differentiell exprimierte Gene, die in vorherigen Studien mit depressiver Erkrankung beziehungsweise einem Effekt psychiatrischer Medikation assoziiert worden waren, wurden mittels qRT-PCR-Analyse validiert. Im Anschluss an die Analyse im Tier wurden als differentiell exprimiert best{\"a}tigte Gene per qRT-PCR analog in humanen Leukozyten untersucht. Die Blutproben waren in einem klinisch-naturalistischen Design w{\"a}hrend der ersten und der f{\"u}nften Woche einer Venlafaxin-Pharmakotherapie von Patienten der Klinik f{\"u}r Psychiatrie, Psychosomatik und Psychotherapie des Universit{\"a}tsklinikums W{\"u}rzburg gewonnen worden, das heißt vor und nach potentiellem Eintreten der antidepressiven Wirkung. Trotz der unterschiedlichen Herkunft der analysierten Gewebe k{\"o}nnten auf diesem Weg Hinweise auf Vorg{\"a}nge im menschlichen Gehirn gefunden werden, wie in vergleichenden post mortem Untersuchungen zwischen peripherem und zentralem humanem Material erkannt worden war. Die in der Tierstudie identifizierten Gene kodieren f{\"u}r Transkriptionsfaktoren sowie Proteine die als Teil von second messenger-Kaskaden bekannt sind. Von statistischer Signifikanz erwies sich in der Analyse der humanen Leukozyten die Expressionsreduktion der mRNA der Transkriptionsfaktor-Untereinheit Fos. Befunde zu einer Funktion von Fos, die eine Interpretation im Bezug auf den antidepressiven Effekt von Venlafaxin erm{\"o}glichen, liegen lediglich aus Tierstudien vor. Fos-ko im Hippo-kampus von M{\"a}usen wurde mit reduziertem Angstverhalten und h{\"o}herer Exzitabilit{\"a}t von hippokampalen Neuronen assoziiert. Auch wurde eine Assoziation mit Vorg{\"a}ngen bei synaptischer Plastizit{\"a}t und damit potentiell bei Lernvorg{\"a}ngen gefunden. Auf der anderen Seite wurde depressions-{\"a}hnliches Verhalten bei Ratten mit niedriger hippokampaler Fos-Expression und dessen erfolgreiche pharmakologische "Therapie" mit einer Induktion der Fos-Expression assoziiert. Es scheinen also bereits zwischen nicht-menschlichen Spezies ausgepr{\"a}gte Unterschiede der Rolle von Fos beziehungsweise Fos zu bestehen. Aufgrund der unterschiedlichen Spezies und Gewebe in den hier durchgef{\"u}hrten Untersuchungen sowie den uneinheitlichen Befunden bez{\"u}glich der Rolle von Fos beziehungsweise Fos in vorangegangenen Studien kann abschließend lediglich konstatiert werden, dass Fos vermutlich an der Entstehung depressionsbeg{\"u}nstigender Physiologie beteiligt ist und auch, dass eine antidepressive Pharmakotherapie mit Venlafaxin ihre Wirkung vermutlich unter Beteiligung von Fos entfaltet. Die Entwicklung innovativer Antidepressiva die unter Umgehung der monoaminergen Transmissionssysteme durch gezielte Reduktion der Fos-Abundanz das therapeutische Ziel erreichen lassen, k{\"o}nnte auf Basis der vorliegenden Studie angedacht werden, scheint allerdings aufgrund der ubiquit{\"a}ren Mediatorent{\"a}tigkeit des Proteins und insbesondere aufgrund seiner nicht endg{\"u}ltig definierten Rolle bei der Entstehung von Krebs nicht praktikabel. Zuk{\"u}nftige Untersuchungen sollten daher auf andere im Microarray differentiell exprimiert gefundene Gene fokussieren. In die Untersuchung der Expressionsaktivit{\"a}t der f{\"u}r die prim{\"a}ren Zielstrukturen von Venlafaxin (Serotonin- beziehungsweise Noradrenalin-Transporter) kodierenden Gene (SLC6A4 beziehungsweise SLC6A2) und der Serumkonzentration an aktiver Substanz nach Venlafaxin-Applikation im Hinblick auf deren Pr{\"a}diktivit{\"a}t des therapeutischen Effektes, wurden in einem klinisch-naturalistischen Design Patienten der Klinik f{\"u}r Psychiatrie, Psychosomatik und Psychotherapie des Universit{\"a}tsklinikums W{\"u}rzburg eingeschlossen. Genotypisiert wurden f{\"u}r SLC6A2 der SNP rs28386840 und f{\"u}r SLC6A4 der Polymorphismus 5-HTTLPR. Die Genotypen wurden jeweils in niedrig- und hoch-exprimierend unterteilt und damit auf die ph{\"a}notypische Transportkapazit{\"a}t der pr{\"a}synaptischen Membran Bezug genommen. Der therapeutische Erfolg wurde anhand der CGI-I-Skala evaluiert und f{\"u}r die Analysen in "gutes Ansprechen" und "schlechtes Ansprechen" dichotomisiert. Der SLC6A2-Polymorphismus zeigte sich als nicht mit dem therapeutischen Effekt assoziiert. Der hochexprimierende SLC6A4-Genotyp wurde signifikant mit einem schlechteren Ansprechen assoziiert. Dies war in den nach Serumkonzentration aktiver Substanz stratifizierten Unterkollektiven insbesondere in dem Bereich zwischen 200 und 400 ng / ml zu erkennen, wohingegen unter- und oberhalb dieses Bereiches keine Assoziation zu finden war. Aus diesen Resultaten kann gefolgert werden, dass sich aus der Genotypisierung von rs28386840 keine therapeutischen Instruktionen ableiten lassen. Bei Kenntnis des 5-HTTLPR-Genotyps k{\"o}nnte f{\"u}r den klinischen Alltag die Empfehlung ergehen, falls Venlafaxin als sSNRI bei Patienten mit hochexprimierendem Genotyp eingesetzt werden soll, eine Serumsummenkonzentration jenseits des durch die AGNP empfohlenen Bereiches (100 - 400 ng / ml) anzustreben. Da hier jedoch lediglich eine Stichprobe von 56 Patienten untersucht und insbesondere, da zahlreiche potentielle Kofaktoren des therapeutischen Effektes nicht in die Analyse einbezogen werden konnten, ist die Assoziation vor Anwendung in der Therapiesteuerung anhand umfassenderer prospektiver kontrollierter Studien zu validieren.}, subject = {Wirkmechanismus}, language = {de} } @phdthesis{Thielmann2014, author = {Thielmann, Ina}, title = {Function and regulation of phospholipase D in blood platelets: in vitro and in vivo studies in mice}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-99179}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Summary Platelet activation and aggregation are crucial for primary hemostasis but can also result in occlusive thrombus formation. Agonist induced platelet activation involves different signaling pathways leading to the activation of phospholipases (PL) which produce second messengers. While the role of PLCs in platelet activation is well established, less is known about the relevance of PLDs. In the current study, the function and regulation of PLD in platelets was investigated using genetic and pharmacological approaches. In the first part of this thesis, adhesion, activation and aggregation of platelets from mice lacking PLD2 or both PLD1 and PLD2 were analyzed in vitro and in vivo. While the absence of PLD2 resulted in slightly reduced PLD activity in platelets, it had no detectable effect on the platelet function in vitro and in vivo. However, the combined deficiency of both PLD isoforms resulted in defective alpha-granule release and protection in a model of ferric chloride induced arteriolar thrombosis, effects that were not observed in mice lacking only one PLD isoform. These results revealed, for the first time, redundant roles of PLD1 and PLD2 in platelet alpha-granule secretion and indicate that this may be relevant for pathological thrombus formation. Thus, PLD might represent a promising target for antithrombotic therapy. Thus, this hypothesis was tested more directly in the second part of this thesis. The effects of pharmacological inhibition of PLD activity on hemostasis, thrombosis and thrombo-inflammatory brain infarction in mice were assessed. Treatment of platelets with the reversible, small molecule PLD inhibitor 5-Fluoro-2-indolyl des-chlorohalopemide (FIPI) led to a specific blockade of PLD activity that was associated with reduced -granule release and integrin activation. Mice that received FIPI at a dose of 3 mg/kg displayed reduced occlusive thrombus formation upon chemical injury of carotid arteries or mesenterial arterioles. Similarly, FIPI-treated mice had smaller infarct sizes and significantly better motor and neurological function 24 hours after transient middle cerebral artery occlusion. This protective effect was not associated with major intracerebral hemorrhage or prolonged tail bleeding times. Thus, pharmacological PLD inhibition might represent a safe therapeutic strategy to prevent arterial thrombosis or ischemic stroke. After revealing a central role for PLD in thrombo-inflammation, the regulation of PLD activity in platelets was analyzed in the last part of the thesis. Up to date, most studies made use of inhibitors potentially exerting off-target effects and consequently PLD regulation is discussed controversially. Therefore, PLD activity in mice genetically lacking potential modulators of PLD activity was determined to address these controversies. These studies revealed that PLD is tightly regulated during initial platelet activation. While integrin outside-in signaling and Gi signaling was dispensable for PLD activation, it was found that PLC dependent pathways were relevant for the regulation of PLD enzyme activity.}, subject = {Phospholipase D}, language = {en} } @phdthesis{Morowski2014, author = {Morowski, Martina}, title = {Relevance of platelet count and ITAM-signalling pathway in murine models of haemostasis, thrombosis and thrombo-inflammation}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-99193}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Platelets are important players in haemostasis and their activation is essential to limit post-traumatic blood loss upon vessel injury. On the other hand, pathological platelet activation may lead to thrombosis resulting in myocardial infarction and stroke. Platelet activation and subsequent thrombus formation are, therefore, tightly regulated and require a well-defined interplay of platelet surface receptors, intracellular signalling molecules, cytoskeletal rearrangements and the activation of the coagulation cascade. In vivo thrombosis and haemostasis models mimic thrombus formation at sites of vascular lesions and are frequently used to assess thrombotic and haemostatic functions of platelets. In this dissertation, different in vivo models were used in mice to address the question at what level a reduced platelet count (PC) compromises stable thrombus formation. To study this, mice were rendered thrombocytopenic by low-dose anti-GPIbα antibody treatment and subjected to a tail bleeding time assay as well as to four different in vivo thrombosis models. Haemostasis and occlusive thrombus formation in small vessels were only mildly affected even at severe reductions of the PC. In contrast, occlusive thrombus formation in larger arteries required higher PCs demonstrating that considerable differences in the sensitivity for PC reductions exist between these models. In a second part of this study, mice were rendered thrombocytopenic by injection of high-dose anti-GPIbα antibody which led to the complete loss of all platelets from the circulation for several days. During recovery from thrombocytopenia, the newly generated platelet population was characterised and revealed a defect in immunoreceptor tyrosine-based activation motif (ITAM)-signalling. This defect translated into impaired arterial thrombus formation. To further investigate ITAM-signalling in vivo, genetically modified mice were analysed which display a positive or negative regulation of platelet ITAM-signalling in vitro. Whereas mice lacking the adapter Grb2 in platelets showed a delayed thrombus formation in vivo after acetylsalicylic acid treatment, Clp36ΔLIM bone marrow chimeric mice and SLAP/SLAP2-deficient mice displayed pro-thrombotic properties in vivo. Finally, mice lacking the adapter protein EFhd2 were analysed in vitro and in vivo. However, EFhd2-deficient platelets showed only a minor increase in the procoagulant activity compared to control.}, subject = {Thrombozyt}, language = {en} }