Refine
Has Fulltext
- yes (6)
Is part of the Bibliography
- yes (6)
Year of publication
- 2023 (6) (remove)
Document Type
- Doctoral Thesis (6) (remove)
Keywords
- Maus (2)
- Affinity probe (1)
- Bauchspeicheldrüsenkrebs (1)
- Blut-Hirn-Schranke (1)
- CVT (1)
- Circadian (1)
- Endozytose (1)
- Fluorescence microscopy (1)
- Fluoreszenzmikroskopie (1)
- Gephyrin (1)
Institute
- Medizinische Fakultät (6) (remove)
Interleukin 6 (IL-6) bewirkt als Entzündungsmediator eine autokrine Makrophagen (MΦ) -Stimulation. Zur Verhinderung pathologischer Entzündungsaktivität sind IL-6-Signale stark reguliert, unter anderem durch die Dileucin-vermittelte Endozytose des Signaltransduktors gp130. Klassisches IL-6-Signaling ist abhängig von der Expression von IL-6Rα und gp130 auf der Zelloberfläche, während IL-6-trans-Signaling durch löslichen IL-6Rα nur von der gp130-Expression abhängt. Die Bedeutung des Dileucin-Internalisierungsmotivs für IL-6-vermittelte Signale in MΦ ist jedoch unklar.
Ziel der vorliegenden Arbeit war eine Charakterisierung muriner GM-CSF- und M-CSF-ausgereifter Knochenmarks (KM) -MΦ hinsichtlich der Relevanz des gp130-Internalisierungsmotivs für IL-6-vermittelte-Signale. Hierzu wurde die gp130LLAA-Mauslinie als knock in-Modell zur Suppression der gp130-Endozytose verwendet.
KM-MΦ entwickeln durch die Ausreifung mittels GM-CSF oder M-CSF einen distinkten Phänotyp: M-CSF-ausgereifte KM-MΦ exprimieren mehr gp130 und IL-6Rα auf der Zelloberfläche als GM-CSF-ausgereifte KM-MΦ. Dies limitiert sowohl klassisches als auch IL-6-trans-Signaling in GM-CSF-ausgereiften KM-MΦ: IL-6 induziert in diesen eine geringere STAT1-Aktivierung, das IL-6/IL-6Ra-Fusionsprotein hyper-IL-6 eine geringere STAT1- und STAT3-Aktivierung.
KM-MΦ aus gp130LLAA-Mäusen exprimieren mehr gp130 als KM-MΦ aus WT-Mäusen bei ähnlichen Mengen IL-6Rα. Dabei ist die Rezeptorexpression auf gp130LLAA-KM-MΦ unabhängig vom Ausreifungsfaktor GM-CSF oder M-CSF. Durch die erhöhte gp130-Expression induziert IL-6-trans-Signaling in gp130LLAA-KM-MΦ eine stärkere STAT1-Aktivierung als in WT-KM-MΦ, dies gilt insbesondere bei Ausreifung mit GM-CSF. Dagegen sind die STAT3-Aktivierung durch IL-6-trans-Signaling und die STAT1- und STAT3-Aktivierung durch klassisches IL-6-Signaling unabhängig von der Expression des Dileucin-Internalisierungsmotivs.
Unklar bleibt, warum IL6-vermittelte Signale in GM-CSF-ausgereiften KM-MΦ stärker durch Dileucin-abhängige gp130-Endozytose reguliert werden als in M-CSF-ausgereifte KM-MΦ. Weitere Untersuchungen sind nötig.
This decade saw the development of new high-end light microscopy approaches. These technologies are increasingly used to expand our understanding of cellular function and the molecular mechanisms of life and disease. The precision of state-of-the-art super resolution microscopy is limited by the properties of the applied fluorescent label. Here I describe the synthesis and evaluation of new functional fluorescent probes that specifically stain gephyrin, universal marker of the neuronal inhibitory post-synapse. Selected probe precursor peptides were synthesised using solid phase peptide synthesis and conjugated with selected super resolution capable fluorescent dyes. Identity and purity were defined using chromatography and mass spectrometric methods. To probe the target specificity of the resulting probe variants in cellular context, a high-throughput assay was established. The established semi-automated and parallel workflow was used for the evaluation of three selected probes by defining their co-localization with the expressed fluorescent target protein. My work provided NN1Dc and established the probe as a visualisation tool for essentially background-free visualisation of the synaptic marker protein gephyrin in a cellular context. Furthermore, NN1DA became part of a toolbox for studying the inhibitory synapse ultrastructure and brain connectivity and turned out useful for the development of a label-free, high-throughput protein interaction quantification assay.
The mammalian central clock, located in the suprachiasmatic nucleus (SCN) of the anterior hypothalamus, controls circadian rhythms in behaviour such as the sleep-wake cycle. It is made up of approximately 20,000 heterogeneous neurons that can be classified by their expression of neuropeptides. There are three major populations: AVP neurons (arginine vasopressin), VIP neurons (vasoactive intestinal peptide), and GRP neurons (gastrin releasing peptide). How these neuronal clusters form functional units to govern various aspects of rhythmic behavior is poorly understood. At a molecular level, biological clocks are represented by transcriptional-posttranslational feedback loops that induce circadian oscillations in the electrical activity of the SCN and hence correlate with behavioral circadian rhythms. In mammals, the sleep wake cycle can be accurately predicted by measuring electrical muscle and brain activity. To investigate the link between the electrical activity of heterogeneous neurons of the SCN and the sleep wake cycle, we optogenetically manipulated AVP neurons in vivo with SSFO (stabilized step function opsin) and simultaneously recorded an electroencephalogram (EEG) and electromyogram (EMG) in freely moving mice. SSFO-mediated stimulation of AVP positive neurons in the anterior hypothalamus increased the total amount of wakefulness during the hour of stimulation. Interestingly, this effect led to a rebound in sleep in the hour after stimulation. Markov chain sleep-stage transition analysis showed that the depolarization of AVP neurons through SSFO promotes the transition from all states to wakefulness. After the end of stimulation, a compensatory increase in transitions to NREM sleep was observed. Ex vivo, SSFO activation in AVP neurons causes depolarization and modifies the activity of AVP neurons. Therefore, the results of this thesis project suggest an essential role of AVP neurons as mediators between circadian rhythmicity and sleep-wake behaviour.
Every year, stroke affects over 100 million people worldwide and the number of cases continues to grow. Ischemic stroke is the most prevalent form of stroke and rapid restoration of blood flow is the primary therapeutic aim. However, recanalization might fail or reperfusion itself induces detrimental processes leading to infarct progression. Previous studies identified platelets and immune cells as drivers of this so-called ischemia/reperfusion (I/R) injury, establishing the concept of ischemic stroke as thrombo-inflammatory disease. Reduced cerebral blood flow despite recanalization promoted the hypothesis that thrombus formation within the cerebral microcirculation induces further tissue damage. The results presented in this thesis refute this: using complementary methodologies, it was shown that infarct growth precedes the occurrence of thrombi excluding them as I/R injury-underlying cause. Blood brain barrier disruption is one of the hallmarks of ischemic stroke pathology and was confirmed as early event during reperfusion injury in the second part of this study. Abolished platelet α-granule release protects mice from vascular leakage in the early reperfusion phase resulting in smaller infarcts. Using in vitro assays, platelet α-granule-derived PDGF-AB was identified as one factor contributing to blood-brain barrier disruption.
In vivo visualization of platelet activation would provide important insights in the spatio-temporal context of platelet activation in stroke pathology. As platelet signaling results in elevated intracellular Ca2+ levels, this is an ideal readout. To overcome the limitations of chemical calcium indicators, a mouse line expressing an endogenous calcium reporter specifically in platelets and megakaryocytes was generated. Presence of the reporter did not interfere with platelet function, consequently these mice were characterized in in vivo and ex vivo models.
Upon ischemic stroke, neutrophils are among the first cells that are recruited to the brain. Since for neutrophils both, beneficial and detrimental effects are described, their role was investigated within this thesis. Neither neutrophil depletion nor absence of NADPH-dependent ROS production (Ncf-/- mice) affected stroke outcome. In contrast, abolished NET-formation in Pad4-/- mice resulted in reduced infarct sizes, revealing detrimental effects of NETosis in the context of ischemic stroke, which might become a potential therapeutic target.
Cerebral venous (sinus) thrombosis, CV(S)T is a rare type of stroke with mainly idiopathic onset. Whereas for arterial thrombosis a critical contribution of platelets is known and widely accepted, for venous thrombosis this is less clear but considered more and more. In the last part of this thesis, it was shown that fab-fragments of the anti-CLEC-2 antibody INU1 trigger pathological platelet activation in vivo, resulting in foudroyant CVT accompanied by heavy neurological symptoms. Using this novel animal model for CVT, cooperative signaling of the two platelet receptors CLEC-2 and GPIIb/IIIa was revealed as major trigger of CVT and potential target for treatment.
Pancreatic ductal adenocarcinoma (PDAC) is predominantly driven by mutations in KRAS and TP53. However, PDAC tumors display deregulated levels of MYC and are a paradigm example for MYC-driven and -addicted tumors. For many years MYC was described as a transcription factor that regulates a pleiotropic number of genes to drive proliferation. Recent work sheds a different light on MYC biology. First, changes in gene expression that come along with the activation of MYC are mild and MYC seems to act more as a factor that reduces stress and increases resilience towards challenges during transcription. Second, MYC is a strong driver of immune evasion in different entities. In this study we depleted MYC in murine PDAC cells and revealed the immune dependent regression of tumors in an orthotope transplant model, as well as the activation of the innate immune system using global expression analysis, immunoblotting and fCLIP.
These experiments revealed that endogenous double-stranded RNA is binding as a viral mimicry to Toll-like receptor 3, causing activation of TBK1 and downstream activation of a proimmunogenic transcription program. The regression of tumors upon depletion of MYC is dependent on this pathway since the knockout of TBK1 prevents regression of tumors after depletion of MYC.
We can summarize this study in three main findings: First, the dominant and most important function of MYC in tumors is not to drive proliferation but to promote immune evasion and prevent immune-dependent regression of tumors. Second, cells monitor defects or delay in splicing and RNA processing and activate the immune system to clear cells that face problems with co-transcriptional processing. Third, MYC suppresses the activation of the cell-intrinsic innate immune system and shields highly proliferating cells from the recognition by the immune system.
To translate this into a therapeutically approach, we replaced the shRNA mediated depletion of MYC by treatment with cardiac glycosides. Upon treatment with cardiac glycosides tumor cells reduce uptake of nutrients, causing a downregulation of MYC translation, inhibition of proliferation, glycolysis and lactate secretion. Lactate is a major reason for immune evasion in solid tumors since it dampens, amongst others, cytotoxic T cells and promotes regulatory T cells.
Treatment of mice with cardiac glycosides causes a complete and immune-dependent remission of PDAC tumors in vivo, pointing out that cardiac glycosides have strong proimmunogenic, anti-cancer effects. More detailed analyses will be needed to dissect the full mechanism how cardiac glycosides act on MYC translation and immune evasion in PDAC tumors.
SPRED 2 wirkt inhibitorisch auf den Ras/ERK-MAPK-Signalweg. Im Knockout Mausmodell
zeigen sich einige schwerwiegende phänotypische Eigenschaften, unter anderem zeigen sich
ein genereller Minderwuchs, veränderte hormonelle Regelkreise, neurologische Auffälligkeiten,
eine deutlich verringerte Lebenserwartung, sowie kardiale Veränderungen. Besonders
schwerwiegende SPRED 2 KO typische Ausprägungen im Herzen sind hierbei eine myokardiale
Fibrosierung, eine myokardiale Hypertrophie und Herzrhythmusstörungen.
In dieser Arbeit wurden insbesondere kardiale Veränderungen auf Zell- und Proteinebene
untersucht. Zur Proteinanalyse der Kardiomyozyten wurden Western Blots und eine Schnittbildgebung
angefertigt. Für eine funktionelle Untersuchung wurden isolierte vitale Kardiomyozyten
mittels Fluoreszenzfarbstoffen untersucht und unter elektrischer Stimulation beobachtet.
Desweiteren wurden isolierte Mitochondrien auf ihren Stoffwechsel und eventuelle
Defekte hin analysiert. Hierbei konnte gezeigt werden, dass junge SPRED2 KO Mäuse keine
wesentlichen hämodynamischen Einschränkungen aufweisen und eine gute Kompensationsfähigkeit
gegenüber einer Nachlaststeigerung aufweisen. Auch gezeigt werden konnte, dass
Veränderungen im Rahmen der Zellkontraktion beim Kalziumhaushalt und Membranpotential
existieren und im Zusammenhang mit einer verminderten Expression von SERCA und CaV1.2
stehen. Bei der Untersuchung von Mitochondrien konnten keine wesentlichen Defizite der
mitochondrialen Funktion der SPRED 2 KO Mäuse gefunden werden. In diesem Zusammenhang
ist die bekannte Störung der Autophagie am ehesten Ursache für eine gesteigerte Fibrosierung,
sowie der gesteigerten Apoptose der Kardiomyozyten. In Folge dessen könnten die
oben beschriebenen Veränderungen des Kalziumhaushaltes der Kardiomyozyten stehen und
letztendlich über maligne Herzrhythmusstörungen zum vorzeitigen Versterben führen.