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The Role of DREAM/MMB-mediated mitotic gene expression downstream of mutated K-Ras in lung cancer
(2017)
The evolutionary conserved Myb-MuvB (MMB) multiprotein complex has an essential role in transcriptional activation of mitotic genes. MMB target genes as well as the MMB associated transcription factor B-Myb and FoxM1 are highly expressed in a range of different cancer types. The elevated expression of these genes correlates with an advanced tumor state and a poor prognosis. This suggests that MMB could contribute to tumorigenesis by mediating overexpression of mitotic genes. Although MMB has been extensively characterized biochemically, the requirement for MMB to tumorigenesis in vivo remains largely unknown and has not been tested directly so far.
In this study, conditional knockout of the MMB core member Lin9 inhibits tumor formation in vivo in a mouse model of lung cancer driven by oncogenic K-Ras and loss of p53. The incomplete recombination observed within tumors points towards an enormous selection pressure against the complete loss of Lin9. RNA interference (RNAi)-mediated depletion of Lin9 or the MMB associated subunit B-Myb provides evidence that MMB is required for the expression of mitotic genes in lung cancer cells. Moreover, it was demonstrated that proliferation of lung cancer cells strongly depends on MMB. Furthermore, in this study, the relationship of MMB to the p53 tumor suppressor was investigated in a primary lung cancer cell line with restorable p53 function. Expression analysis revealed that mitotic genes are downregulated after p53 re-expression. Moreover, activation of p53 induces formation of the repressive DREAM complex and results in enrichment of DREAM at mitotic gene promoters. Conversely, MMB is displaced at these promoters.
Based on these findings the following model is proposed: In p53-negative cells, mitogenic stimuli foster the switch from DREAM to MMB. Thus, mitotic genes are overexpressed and may promote chromosomal instability and tumorigenesis.
This study provides evidence that MMB contributes to the upregulation of G2/M phase-specific genes in p53-negative cells and suggests that inhibition of MMB (or its target genes) might be a strategy for treatment of lung cancer.
G protein-coupled receptors (GPCRs) are the major group of cell-surface receptors that transmit extracellular signals via classical, G protein-dependent pathways into the cell. Although GPCRs were long assumed to signal exclusively from the cell-surface, recent investigations have demonstrated a possibly completely new paradigm. In this new view, GPCR continues signaling via 3´,5´-cyclic adenosine monophosphate (cAMP) after their agonist-induced internalization of ligand/receptor complexes into an intracellular compartment, causing persistent cAMP elevation and apparently specific signaling outcomes. The thyroid stimulating hormone (TSH) receptor is one of the first GPCRs, which has been reported to show persistent signaling after ligand removal (Calebiro et al., 2009). In the meantime, signaling by internalized GPCR become a highly investigated topic and has been shown for several GPCRs, including the parathyroid hormone receptor (Ferrandon et al., 2009), D1 dopamine receptor (Kotowski et al., 2011) and beta2-adrenergic receptor (Irannejad et al., 2013). A recent study on the beta2-adrenergic receptor revealed that internalized receptor not only participates in cAMP signaling, but is also involved in gene transcription (Tsvetanova and von Zastrow, 2014). However, a biological effect of GPCR signaling at intracellular sites, which would demonstrate its physiological relevance, still remained to be shown.
To investigate GPCR signaling from intracellular compartment under physiological condition, two different cellular models were utilized in the present study: intact ovarian follicles expressing luteinizing hormone (LH) receptors and primary thyroid cells expressing TSH receptors.
Intact ovarian follicles were obtained from a transgenic mouse expressing, a Förster/Fluorescence Resonance Energy Transfer (FRET) sensor for cAMP to monitor cAMP/LH receptor signaling. This study provides the first accurate spatiotemporal characterization of cAMP signaling, which is derived from different cell layers of an intact ovarian follicle. Additionally, it could be shown that cAMP diffusion via gap junctions is implicated in spreading the LH-induced cAMP signals from one the outermost (mural granulosa) to the innermost (cumulus oophorus) cell layer of an ovarian follicle. Interestingly, LH receptor stimulation was associated with persistent cAMP signaling after LH removal and negligible desensitization of the cAMP signal. Interfering with receptor internalization with a dynamin inhibitor dynasore did not only prevent persistent LH-induced cAMP signaling, but also impaired the resumption of meiosis in follicle-enclosed oocytes, a key biological effect of LH.
In order to investigate the downstream activation of protein kinase A (PKA) in primary thyroid cells, FRET sensors with different subcellular localization (plasma membrane, cytosol and nucleus) were transiently transfected into primary thyroid cells of wild-type mice via electroporation. Interestingly, TSH stimulation causes at least two distinct phases of PKA activation in the global primary thyroid cell, which are temporally separated by approximately 2 min. In addition, PKA activation in different subcellular compartments are characterized by dissimilar kinetics and amplitudes. Pharmacological inhibition of TSH receptor internalization largely prevented the second (i.e. late) phase of PKA activation as well as the subsequent TSH-dependent phosphorylation of CREB and TSH-dependent induction of early genes. These results suggest that PKA activation and nuclear signaling require internalization of the TSH receptor.
Taken together, the data of the present study provide strong evidence that GPCR signaling at intracellular sites is distinct from the one occurring at the cell-surface and is highly physiologically relevant.
Platelets are small anucleate cell fragments derived from bone marrow megakaryocytes (MKs) and are important players in hemostasis and thrombosis. Platelet granules store factors which are released upon activation. There are three major types of platelet granules: alpha-granules, dense granules and lysosomes. While dense granules contain non-proteinacious factors which support platelet aggregation and adhesion, platelet alpha-granules contain more than 300 different proteins involved in various functions such as inflammation, wound healing and the maintenanceof vascular integrity, however, their functional significance in vivo remains unknown. This thesis summarizes analyses using three mouse models generated to investigate the role of platelet granules in thrombosis, hemostasis, stroke and inflammation.
Unc13d-/- mice displayed defective platelet dense granule secretion, which resulted in abrogated thrombosis and hemostasis. Remarkably, Munc13-4-deficient mice were profoundly protected from infarct progression following transient middle cerebral artery occlusion (tMCAO) and this was not associated with increased intracranial bleeding indicating an essential involvementof dense granule secretion in infarct progression but not intracranial hemostasis during acute stroke with obvious therapeutic implications.
In the second part of this thesis, the role of platelet alpha-granules was investigated using the Nbeal2-/- mouse. Mutations in NBEAL2 have been linked to the gray platelet syndrome (GPS), a rare inherited bleeding disorder. Nbeal2-/- mice displayed the characteristics of human GPS, with defective alpha-granule biogenesis in MKs and their absence from platelets. Nbeal2-deficiency did not affect MK differentiation and proplatelet formation in vitro or platelet life span in vivo. Nbeal2-/- platelets displayed impaired adhesion, aggregation, and coagulant activity ex vivo that translated into defective arterial thrombus formation and protection from thrombo-inflammatory brain infarction in vivo. In a model of skin wound repair, Nbeal2-/- mice exhibited impaired development of functional granulation tissue due to severely reduced differentiation of myofibroblasts.
In the third part, the effects of combined deficiency of alpha- and dense granule secretion were analyzed using Unc13d-/-/Nbeal2-/- mice. Platelets of these mice showed impaired aggregation and adhesion to collagen under flow ex vivo, which translated into infinite tail bleeding times and severely defective arterial thrombus formation in vivo. When subjected to in vivo models of skin or lung inflammation, the double mutant mice showed no signs of hemorrhage. In contrast, lack of platelet granule release resulted in impaired vascular integrity in the ischemic brain following tMCAO leading to increased mortality. This indicates that while defective dense granule secretion or the paucity of alpha-granules alone have no effect on vascular integrity after stroke, the combination of both impairs vascular integrity and causes an increase in mortality.
Spinal muscular atrophy and amyotrophic lateral sclerosis are the two most common devastating motoneuron diseases. The mechanisms leading to motoneuron degeneration are not resolved so far, although different hypotheses have been built on existing data. One possible mechanism is disturbed axonal transport of RNAs in the affected motoneurons. The underlying question of this study was therefore to characterize changes in transcript levels of distinct RNAs in cell culture models of spinal muscular atrophy and amyotrophic lateral sclerosis, especially in the axonal compartment of primary motoneurons.
To investigate this in detail we first established compartmentalized cultures of Primary mouse motoneurons. Subsequently, total RNA of both compartments was extracted
separately and either linearly amplified and subjected to microarray profiling or whole transcriptome amplification followed by RNA-Sequencing was performed. To make
the whole transcriptome amplification method suitable for compartmentalized cultures, we adapted a double-random priming strategy. First, we applied this method
for initial optimization onto serial dilutions of spinal cord RNA and later on to the compartmentalized motoneurons.
Analysis of the data obtained from wildtype cultures already revealed interesting results. First, the RNA composition of axons turned out to be highly similar to the somatodendritic compartment. Second, axons seem to be particularly enriched for transcripts related to protein synthesis and energy production. In a next step we
repeated the experiments by using knockdown cultures. The proteins depleted hereby are Smn, Tdp-43 and hnRNP R. Another experiment was performed by knocking down the non-coding RNA 7SK, the main interacting RNA of hnRNP R.
Depletion of Smn led to a vast number of deregulated transcripts in the axonal and somatodendritic compartment. Transcripts downregulated in the axons upon Smn depletion were especially enriched for GOterms related to RNA processing and encode proteins located in neuron projections including axons and growth cones.
Strinkingly, among the upregulated transcripts in the somatodendritic compartment we mainly found MHC class I transcripts suggesting a potential neuroprotective role.
In contrast, although knockdown of Tdp-43 also revealed a large number of downregulated transcripts in the axonal compartment, these transcripts were mainly
associated with functions in transcriptional regulation and RNA splicing. For the hnRNP R knockdown our results were again different. Here, we observed
downregulated transcripts in the axonal compartment mainly associated with regulation of synaptic transmission and nerve impulses. Interestingly, a comparison between deregulated transcripts in the axonal compartment of both hnRNP R and 7SK knockdown presented a significant overlap of several transcripts suggesting
some common mechanism for both knockdowns.
Thus, our data indicate that a loss of disease-associated proteins involved in axonal RNA transport causes distinct transcriptome alterations in motor axons.
Am Rebstock werden in der Natur von Agrobacterium vitis, dem Auslöser Wurzelhalsgallenerkrankung, charakteristische Wurzelhalsgallentumore induziert. Virulente Vertreter der Gattung der Agrobacteria schleusen bakterielle DNA in das pflanzliche Genom ein, wodurch die Pflanze Tumore produziert. Die Wurzelhalsgallenerkrankung wird seit einem Jahrhundert als ein Beispiel der Pflanzen-Pathogen-Interaktion untersucht. Die Rolle der bakteriellen Flora im Zusammenhang mit der Wurzelhalsgallenerkrankung beim Rebstock wurde bisher kaum betrachtet. Um dieser Frage nachzugehen, habe ich die endophytische mikrobielle Zusammensetzung von Rebstöcken mit und ohne Wurzelhalsgalle analysiert. Es werden Proben von drei Zeitpunkten einer Wachstumsperiode (Frühling, Sommer und Herbst) und von den Organen der Rebstöcke (Wurzeln, Pfropfstelle und einjährige Triebe) sowie dem Boden in einer Weinanlage bei Himmelstadt in Unterfranken genommen. Die Bakterienflora dieser Umweltproben wird mit kultivierungsabhängigen (Isolierung von Bakterien) und kultivierungsunabhängigen (Hochdurchsatzsequenzierungen) Methoden untersucht. Zudem werden i) die Virulenz der verschiedenen Agrobacterium-Isolate in Tumorassays bestimmt, ii) synthetische Bakteriengemeinschaften von in vitro kultivierten Weinpflänzchen mit Wurzelhalsgallen analysiert, iii) die Genome von einem virulenten und einem nicht-virulenten Agrobacteria-Isolat aus der Wurzelhalsgalle verglichen, iv) erste Interaktionsstudien auf festen Nährmedien durchgeführt und v) virulente Agrobacteria mittels bildgebender Fluoreszenz-Lebenszeit-Mikroskopie (FLIM) in Wurzelhalsgallen lokalisiert.
Die Rebstöcke dieser Studie haben eine organspezifische Bakterienflora, die innerhalb einer Wachstumsperiode variiert. Nur die Bakterienflora der Pfropfstelle (mit oder ohne Wurzelhalsgalle) aber nicht die des Bodens, der Wurzeln, und der einjährigen Triebe unterscheidet sich strukturell zwischen gesunden und erkrankten Rebstöcken. Mikroskopisch konnten virulente Agrobacteria punktuell in Interzellularen, sklerenchymatischen Geweben und assoziiert mit Leitgefäßen nachgewiesen werden. Dadurch ist ausreichend Lebensraum vorhanden, der zusätzlich von tumorspezifischen Bakterien besiedelt werden kann. Im Gegensatz zur gesunden Pfropfstelle ist in der Wurzelhalsgalle eine saisonal stabile Kernmikroflora, bestehend aus Vertreter von A. vitis, Pseudomonas, Enterobacteriaceae, Agrobacterium tumefaciens, Gammaproteobacteria und Burkholderiales, vorhanden. Diese Bakterien werden überwiegend aus dem Boden rekrutiert und profitieren von der Nährstoffsituation in der Wurzelhalsgalle. Wurzelhalsgallen enthalten Opine, die nur von der transformierten Pflanzenzelle produziert werden. Interessanterweise hat in dieser Arbeit ein Agrobacterium-Isolat Gene, die zum Opinkatabolismus beitragen und ein Pseudomonas-Isolat kann Opine als einzige Kohlenstoffquelle nutzen. Trotzdem sind beide Isolate weder virulent noch verdrängen sie die virulenten A. vitis, die ebenso Opine nutzen, aus der Wurzelhalsgalle. In synthetischen Bakteriengemeinschaften an in vitro kultivierten Weinpflänzchen konnte gezeigt werden, dass diese und weitere tumorspezifischen Bakterien, neben A. vitis, nicht essentiell zur Entstehung der Wurzelhalsgalle nötig sind aber unterschiedliche Funktionen in der Wurzelhalsgalle übernehmen. Ein Serratia-Isolat hemmt das Wachstum von A. vitis auf festen Nährmedium, andere fördern oder hemmen das Wachstum der Wurzelhalsgalle. Nach Studien in der Literatur erhöhen weitere Bakterien die Resistenz des Rebstocks gegenüber biotischem und abiotischem Stress.
Zusammengefasst identifizierten und isolierte ich in dieser Studie unter 150 unterschiedlichen Bakterien in der Wurzelhalsgalle jene Bakterien, die neben A. vitis von der neuen ökologischen Nische profitieren und somit wahrscheinlich Opportunisten mit unterschiedlichen Funktionen sind. In Folge von multiplen Interaktionen in der Wurzelhalsgalle entsteht ein ökologisches Gleichgewicht zwischen den opportunistischen Bakterien, der Wurzelhalsgalle und dem Rebstock, das den Fortbestand des Rebstocks mit Wurzelhalsgalle ermöglicht.
The genetic information encoded with in the genes are transcribed and translated to give rise to
the functional proteins, which are building block of a cell. At first, it was thought that the
regulation of gene expression particularly occurs at the level of transcription by various
transcription factors. Recent discoveries have shown the vital role of gene regulation at the level
of RNA also known as post-transcriptional gene regulation (PTGR). Apart from non-coding RNAs
e.g. micro RNAs, various RNA binding proteins (RBPs) play essential role in PTGR. RBPs have
been implicated in different stages of mRNA life cycle ranging from splicing, processing,
transport, localization and decay. In last 20 years studies have shown the presence of hundreds
of RBPs across eukaryotic systems many of which are widely conserved. Given the rising number
of RBPs and their link to human diseases it is quite evident that RBPs have major role in cellular
processes and their regulation. The current study is aimed to describe the so far unknown
molecular mechanism of CCHC-type Zinc Finger Nucleic Acid Binding Protein (CNBP/ZNF9)
function in vivo.
CNBP is ubiquitously expressed across various human tissues and is a highly conserved RBP in
eukaryotes. It is required for embryonic development in mammals and has been implicated in
transcriptional as well as post-transcriptional gene regulation; however, its molecular function
and direct target genes remain elusive. Here, we use multiple systems-wide approaches to
identify CNBP targets and document the consequences of CNBP binding. We established CNBP as
a cytoplasmic RNA-binding-protein and used Photoactivatable Ribonucleoside Enhanced
Crosslinking and Immunoprecipitation (PAR-CLIP) to identify direct interactions of CNBP with
4178 mRNAs. CNBP preferentially bound a G-rich motif in the target mRNA coding sequences.
Functional analyses, including ribosome profiling, RNA sequencing, and luciferase assays
revealed the CNBP mode of action on target transcripts. CNBP binding was found to increase the
translational efficiency of its target genes. We hypothesize that this is consistent with an RNA
chaperone function of CNBP helping to resolve secondary structures, thus promoting
translation. Altogether this study provides a novel mechanism of CNBP function in vivo and acts
as a step-stone to study the individual CNBP targets that will bring us closer to understand the
disease onset.
Several important cellular processes, including transcription, nucleotide excision repair and cell cycle control are mediated by the multifaceted interplay of subunits within the general transcription factor II H (TFIIH).
A better understanding of the molecular structure of TFIIH is the key to unravel the mechanism of action of this versatile protein complex within these pathways. This becomes especially important in the context of severe diseases like xeroderma pigmentosum, Cockayne syndrome and trichothiodystrophy, that arise from single point mutations in some of the TFIIH subunits.
In an attempt to structurally characterize the TFIIH complex, we harnessed the qualities of the eukaryotic thermophile Chaetomium thermophilum, a remarkable fungus, which has only recently been recognized as a novel model organism. Homologues of TFIIH from C. thermophilum were expressed in E. coli, purified to homogeneity and subsequently utilized for crystallization trials and biochemical studies.
The results of the present work include the first crystal structure of the p34 subunit of TFIIH, comprising the N-terminal domain of the protein. The structure revealed a von Willebrand Factor A (vWA) like fold, which is generally known to be involved in a multitude of protein-protein interactions. Structural comparison allowed to delineate similarities as well as differences to already known vWA domains, providing insight into the role of p34 within TFIIH. These results indicate that p34 assumes the role of a structural scaffold for other TFIIH subunits via its vWA domain, while likely serving additional functions, which are mediated through its
C-terminal zinc binding domain and are so far unknown.
Within TFIIH p34 interacts strongly with the p44 subunit, a positive regulator of the XPD helicase, which is required for regulation of RNA Polymerase II mediated transcription and essential for eukaryotic nucleotide excision repair. Based on the p34 vWA structure putative protein-protein interfaces were analyzed and binding sites for the p34 p44 interaction suggested. Continuous crystallization efforts then led to the first structure of a p34 p44 minimal complex, comprising the N-terminal vWA domain of p34 and the C-terminal C4C4 RING domain of p44. The structure of the p34 p44 minimal complex verified the previous hypothesis regarding the involved binding sites. In addition, careful analysis of the complex interface allowed to identify critical residues, which were subsequently mutated and analyzed with respect to their significance in mediating the p34 p44 interaction, by analytical size exclusion chromatography, electrophoretic mobility shift assays and isothermal titration calorimetry. The structure of the p34 p44 complex also revealed a binding mode of the p44 C4C4 RING domain, which differed from that of other known RING domains in several aspects, supporting the hypothesis that p44 contains a novel variation of this domain.
Neisseria gonorrhoeae, the causative agent of the sexually transmitted disease gonorrhea, has the potential to spread in the human host and cause a severe complication called disseminated gonococcal infection (DGI). The expression of the major outer membrane porin PorBIA is a characteristic of most gonococci associated with DGI. PorBIA binds to the scavenger receptor expressed on endothelial cells (SREC-I), which mediates the so-called low phosphate-dependent invasion (LPDI). This uptake mechanism enables N. gonorrhoeae to rapidly invade epithelial and endothelial cells in a phosphate-sensitive manner.
We recently demonstrated that the neutral sphingomyelinase, which catalyses the hydrolysis of sphingomyelin to ceramide and phosphorylcholine, is required for the LPDI of gonococci in non-phagocytic cells. Neutral sphingomyelinase 2 (NSM2) plays a key role in the early PorBIA signaling by recruiting the PI3 kinase to caveolin. The following activation of the PI3 kinase-dependent downstream signaling leads to the engulfment of the bacteria. As a part of this work, I could confirm the involvement of the NSM2. The role of the enzyme was further elucidated by the generation of antibodies directed against NSM2 and the construction of an epithelium-based NSM2 knockout cell line using CRISPR/Cas9. The knockout of the NSM2 strongly inhibits the LPDI. The invasion could be, however, restored by the complementation of the knockout using an NSM2-GFP construct. However, the results could not be reproduced.
In this work, I could show the involvement of further members of the sphingolipid pathway in the PorBIA-mediated invasion. Lipidome analysis revealed an increase of the bioactive molecules ceramide and sphingosine due to gonococcal infection. Both molecules do not only affect the host cell, but seem to influence the bacteria as well: while ceramide seems to be incorporated by the gonococci, sphingosine is toxic for the bacteria. Furthermore, the sphingosine kinase 2 (SPHK2) plays an important role in invasion, since the inhibition and knockdown of the enzyme revealed a negative effect on gonococcal invasion. To elucidate the role of the sphingosine kinases in invasion in more detail, an activity assay was established in this study. Additionally, the impact of the sphingosine-1-phosphate lyase (S1PL) on invasion was investigated. Inhibitor studies and infection experiments conducted with a CRISPR/Cas9 HeLa S1PL knockout cell line revealed a role of the enzyme not only in the PorBIA-mediated invasion, but also in the Opa50/HSPG-mediated gonococcal invasion. The signaling experiments allowed the categorization of the SPHK and S1PL activation in the context of infection. Like the NSM2, both enzymes play a role in the early PorBIA signaling events leading to the uptake of the bacteria. All those findings indicate an important role of sphingolipids in the invasion and survival of N. gonorrhoeae.
In the last part of this work, the role of the NSM2 in the inhibition of apoptosis in neutrophils due to gonococcal infection was investigated. It could be demonstrated that the delayed onset of apoptosis is independent of neisserial porin and Opa proteins. Furthermore, the influence of neisserial peptidoglycan on PMN apoptosis was analysed using mutant strains, but no connection could be determined. Since the NSM2 is the most prominent sphingomyelinase in PMNs, fulfils manifold cell physiological functions and has already been connected to apoptosis, the impact of the enzyme on apoptosis inhibition due to gonococcal infection was investigated using inhibitors, with no positive results.
Summary
Platelet activation and aggregation at sites of vascular injury is critical to prevent excessive blood loss, but may also lead to life-threatening ischemic disease states, such as myocardial infarction and stroke. Glycoprotein (GP) VI and C type lectin-like receptor 2 (CLEC-2) are essential platelet activating receptors in hemostasis and thrombo-inflammatory disease which signal through a (hem)immunoreceptor tyrosine-based activation motif (ITAM)-dependent pathway. The adapter molecules Src-like adapter protein (SLAP) and SLAP2 are involved in the regulation of immune cell receptor surface expression and signaling, but their function in platelets is unknown. As revealed in this thesis, single deficiency of SLAP or SLAP2 in mice had only moderate effects on platelet function, while SLAP/SLAP2 double deficiency resulted in markedly increased signal transduction, integrin activation, granule release, aggregation, procoagulant activity and thrombin generation following (hem)ITAM-coupled, but not G protein-coupled receptor activation. Slap-/-/Slap2-/- mice displayed accelerated occlusive arterial thrombus formation and a dramatically worsened outcome after focal cerebral ischemia. These results establish SLAP and SLAP2 as critical inhibitors of platelet (hem)ITAM signaling in the setting of arterial thrombosis and ischemic stroke.
GPVI has emerged as a promising novel pharmacological target for treatment of thrombotic and inflammatory disease states, but the exact mechanisms of its immunodepletion in vivo are incompletely understood. It was hypothesized that SLAP and SLAP2 may be involved in the control of GPVI down-regulation because of their role in the internalization of immune cell receptors. As demonstrated in the second part of the thesis, SLAP and SLAP2 were dispensable for antibody-induced GPVI down-regulation, but anti-GPVI treatment resulted in prolonged strong thrombocytopenia in Slap-/-/Slap2-/- mice. The profound thrombocytopenia likely resulted from the powerful platelet activation which the anti-GPVI antibody induced in Slap-/-/Slap2-/- platelets, but importantly, not in wild-type platelets. These data indicate that the expression and activation state of key modulators of the GPVI signaling cascade may have important implications for the safety profile and efficacy of anti-GPVI agents.
Small GTPases of the Rho family, such as RhoA and Cdc42, are critically involved in the regulation of cytoskeletal rearrangements during platelet activation, but little is known about the specific roles and functional redundancy of both proteins in platelet biogenesis. As shown in the final part of the thesis, combined deficiency of RhoA and Cdc42 led to marked alterations in megakaryocyte morphology and the generation of platelets of heterogeneous size and granule content. Despite severe hemostatic defects and profound thrombo¬cytopenia, circulating RhoA-/-/Cdc42-/- platelets were still capable of granule secretion and the formation of occlusive thrombi. These results implicate the existence of both distinct and overlapping roles of RhoA and Cdc42 in platelet production and function.
Einfluss der sauren Sphingomyelinase auf anti-virale T-Zellantworten im Masernvirus-Infektionsmodell
(2017)
Die saure Sphingomyelinase (Asm), ein Enzym des Sphingolipidmetabolismus,
spaltet Sphingomyelin zu Ceramid und Phosopocholin. Aktiviert wird die Asm unter
anderem durch Stimulation des CD28 Rezeptors. CD28 Signale werden auch für die
Aktivierung von konventionellen T-Zellen (Tconv) und für die Kostimulation benötigt
und sind essentiell für die Differenzierung von regulatorischen T-Zellen (Treg) im
Thymus und deren Erhalt in der Peripherie. Wir konnten zeigen, dass sich Tconv und
Treg Zellen hinsichtlich der Asm unterscheiden. Treg haben eine höhere "basale"
Asm Aktivität, widergespiegelt im höheren Ceramidgehalt und haben eine niedrigere
Lipidordnung als Tconv Zellen. Die Abwesenheit der Asm in defizienten Mäusen
bewirkt einen relativen Anstieg der Treg-Frequenz innerhalb der CD4+ T-Zellen.
Außerdem führt die Asm-Defizienz in Treg Zellen zu einer erhöhten Umsatzrate des
immunsupprimierenden Moleküls CTLA-4 und zu einer verstärkten Suppressivität
von Treg Zellen aus Asm-/- Mäusen gegenüber Wildtyp Zellen. Ein Anstieg in der
Treg-Frequenz, äquivalent zur genetischen Defizienz, kann auch durch Inhibition der
Asm, d. h. durch Wirkstoffe wie Amitriptylin und Desipramin erreicht werden. Es
konnte gezeigt werden, dass die Inhibitorbehandlung die absolute Anzahl der Tconv
Zellen selektiv verringert, da Treg Zellen gegenüber dem Asm Inhibitor-induzierten
Zelltod resistenter sind. Mechanistisch erklärbar sind die Unterschiede gegenüber
den proapoptotischen Inhibitoreffekten zwischen Tconv und Treg Zellen dadurch,
dass Treg Zellen durch die Anwesenheit von IL-2 geschützt sind. In Abwesenheit von
IL-2 sterben die Treg Zellen ebenfalls. Die gezielte Veränderung des Verhältnisses
von Treg zu Tconv durch den Einsatz von Asm-inhibitorischen Medikamenten kann
hilfreich bei der therapeutischen Behandlung von inflammatorischen- und
Autoimmunerkrankungen sein.
Inwiefern die Asm für die Funktion von T-Zellen in der anti-viralen Immunantwort
entscheidend ist, wurde im Masernvirus-Infektionsmodell näher untersucht. In Asm-/-
Mäusen und Amitriptylin-behandelten Mäusen konnte gezeigt werden, dass in
Abwesenheit der Asm die Kontrolle der Masernvirusinfektion verschlechtert ist. Treg
sind auch hier von entscheidender Bedeutung, da die Asm-abhängige, verstärkte
Masernvirusinfektion bei Fehlen der Asm nur in Gegenwart von Treg auftritt. In der
akuten Phase gibt es in Asm-/- Mäusen weniger masernvirusspezifische T-Zellen und dadurch eine verringerte Beseitigung der Viruslast. In der chronischen Phase ist die
Anzahl masernvirusspezifischer T-Zellen zwischen WT und Asm-/- Mäusen
vergleichbar. In Letzteren ist allerdings die Anzahl und Frequenz von T-Zellen im
Gehirn infizierter Mäuse noch deutlich erhöht, was die verstärkte Maserninfektion
widerspiegelt.
Zusammenfassend zeigt sich, dass die Asm die Funktion von Treg moduliert und
einen Einfluss auf das Verhältnis von Tconv und Treg zueinander hat. Im
Masernvirus-Infektionsmodell kann die Veränderung des Tconv zu Treg
Verhältnisses in Abwesenheit der Asm ursächlich für die verringerte Viruskontrolle
sein. Die Asm Inhibitor-induzierte Treg-Aktivierung und die Beeinflussung des Treg
zu Tconv Verhältnisses können wiederum für therapeutische Zwecke genutzt
werden, wie beispielsweise bei Multipler Sklerose und Rheumatoider Arthritis.