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Dem Endothel, welches die luminale Oberfläche aller Blutgefäße auskleidet, kommt eine wichtige Barrierefunktion zwischen Blut und Gewebe zu. Nur durch eine bedarfsgerechte Justierung dieser Barriere, die den Durchtritt von Molekülen und Zellen reguliert, kann die Gewebehomöostase aufrechterhalten werden. Dabei ist das Endothel nicht nur passive Barriere, sondern auch an dieser dynamischen Regulation aktiv beteiligt. Störungen oder Fehlregulationen dieser Prozesse führen zu Pathologien, z.B. Arteriosklerose.
Es ist seit längerem bekannt, dass Carcinoembryonic antigen–related cell adhesion molecule-1 (CEACAM1), ein Mitglied der Immunglobulin-Superfamilie, die Bildung und Morphogenese neuer Blutgefäße beeinflusst. Die spontane Entwicklung kleiner Arteriosklerose-ähnlicher Läsionen in CEACAM1 knockout (Cc1-/-) Mäusen zeigt, dass CEACAM1 auch für die Homöostase ausgereifter Blutgefäße von Bedeutung ist. Ziel dieser Dissertationsarbeit war daher, den Einfluss von CEACAM1 auf wesentliche Aspekte der Endothelfunktion in Aorten in situ bzw. in Endothelzellkulturen in vitro zu analysieren.
Es konnte zunächst gezeigt werden, dass CEACAM1-defiziente Endothelzellen im Vergleich zu Wildtyp (WT) Endothelzellen eine rundlichere Zellmorphologie mit meanderförmigen Zellgrenzen und interzellulären Lücken aufweisen. Diese morphologischen Unterschiede stimmen mit Befunden in situ an Aorten von WT und Cc1-/- Mäusen überein.
Weiterhin wurde eine Translokation der endothelialen NO-Synthase (eNOS) von der Zellmembran in den peri-nukleären Bereich bei CEACAM1-Defizienz festgestellt. Die erhobenen Daten bieten zwei mögliche Erklärungen dafür. Einerseits könnte CEACAM1 durch Interaktion mit eNOS als Membrananker fungieren. Daneben wiesen CEACAM1-defiziente Endothelzellen eine erhöhte Expression des Enzyms APT1 auf, welches eNOS depalmitoyliert. Die daraus resultierende, ebenfalls nachgewiesene geringere Palmitoylierung könnte auch zur verminderten Membran-lokalisation von eNOS beitragen.
Zur endothelialen Funktion gehört, die Adhäsion von Blutzellen an die Gefäßwand weitestgehend zu beschränken. CEACAM1-defiziente Endothelzellen zeigten im Vergleich zu WT Endothelzellen eine verstärkte Adhäsivität gegenüber murinen und humanen Monozyten. Ähnliche Unterschiede wurden für Aortenexplantate aus WT und Cc1-/- Mäusen festgestellt. Dies ist einerseits mit einer verstärkten Expression des Zelladhäsionsmoleküls ICAM-1 bei CEACAM1-Defizienz erklärbar. Darüber hinaus vermittelt die Glykokalyx anti-adhäsive Eigenschaften. Aus Vorbefunden war bekannt, dass die endotheliale Glykokalyx in der Aorta von Cc1-/- Mäuse reduziert ist. Im Rahmen dieser Arbeit konnte dies auf eine verstärkte Expression der Glykokalyx-degradierenden Enzyme MMP9, Chondroitinase sowie Hyaluronidase-2 in Cc1-/- Endothelzellen zurückgeführt werden.
Eine erhöhte Permeabilität stellt einen Indikator für ein dysfunktionales Endothel, eines der initialen Schritte in der Pathogenese der Arteriosklerose, dar. Zur Analyse der aortalen Permeabilität wurde ein modifizierter Miles-Assay etabliert. Unter Verwendung etablierter muriner Arteriosklerosemodelle konnte gezeigt werden, dass dieser Assay eine Störung der vaskulären Permeabilität bereits vor Auftreten makroskopischer Veränderungen zuverlässig detektiert.
Im Rahmen der folgenden Analysen an WT und Cc1-/- Mäusen zeigte sich ein altersabhängiger Effekt von CEACAM1 auf die Gefäßpermeabilität: Aorten von 3 Monate alten Cc1-/- Mäuse wiesen eine im Vergleich zum WT erhöhte Gefäßpermeabilität auf, welche wahrscheinlich Folge einer verzögerten Gefäßreifung ist. Im Alter von 9 Monaten zeigte sich dagegen ein entgegengesetztes Bild. Dies wurde auf eine verstärkte Expression des die Barriere schädigenden Inflammationsmediators TNF-α in 9 Monate alten WT Mäusen zurückgeführt.
Außerdem modulierte CEACAM1 die TNF-α-vermittelte Lockerung der endothelialen Barriere, indem es die Phosphorylierung von Adherens Junction Proteinen beeinflusste. Basal stabilisierte CEACAM1 die endotheliale Barriere durch Hemmung der Phosphorylierung von Caveolin-1, welches Adherens Junctions destabilisiert. Unter Einfluss von TNF-α war CEACAM1 verstärkt im Bereich von Adherens Junctions lokalisiert und rekrutierte dort Src-Kinase. Src-Kinase wiederum destabilisierte Adherens Junctions durch Phosphorylierung von β-Catenin, was in verstärkter Gefäßpermeabilität resultierte. Dagegen führte TNF-α in CEACAM1-defizienten Endothelzellen zu einer Dephosphorylierung von Caveolin-1 und β-Catenin, wodurch Adherens Junctions und damit die endotheliale Barriere stabilisiert wurden. Diese CEACAM1-abhängige differenzielle Regulation der Stabilität von Adherens Junctions unter TNF-α trägt wahrscheinlich maßgeblich zu den Unterschieden der vaskulären Permeabilität in 3 bzw. 9 Monate alten WT und Cc1-/- Mäusen bei.
Zusammenfassend konnte im Rahmen dieser Arbeit nachgewiesen werden, dass CEACAM1 zentrale Funktionen des Endothels und hierüber die Homöostase reifer Gefäße beeinflusst. Da eine Expression von CEACAM1 auch in arteriosklerotischen Plaques nachgewiesen werden konnte, soll in weiteren Untersuchungen auch der Beitrag von CEACAM1 zur arteriosklerotischen Plaquebildung analysiert werden.
Megakaryocyte localization in the bone marrow depending on the knock-out of small Rho GTPases
(2020)
This work focuses on megakaryocyte physiology with a special interest in the description of the localization of megakaryocytes in the bone marrow in mice single-deficient of the small Rho GTPase RhoA or double-deficient for RhoA and Cdc42. RhoA knock-out mice revealed intraluminal presence of megakaryocytes in bone marrow sinusoids. In a next step, potential aggravation, attenuation or preservation of this phenotype was studied in related mouse strains and also in the setting of platelet depletion and blockage of important megakaryocyte and platelet glycoprotein receptors in order to understand underlying singling pathways. A second part of this thesis studied the role of RhoF in filopodia formation and scrutinized RhoF deficient mice with regard to platelet activation and degranulation.
Platelets, small anucleate cell fragments in the blood stream, derive from large precursor cells, so-called megakaryocytes (MK) residing in the bone marrow (BM). In addition to their role in wound healing, platelets have been shown to play a significant role during inflammatory bleeding. Above all, the immunoreceptor tyrosine-based activation motif (ITAM) receptors GPVI as well as CLEC-2 have been identified as main regulators of vascular integrity.
In addition to ITAM-bearing receptors, our group identified GPV as another potent regulator of hemostasis and thrombosis. Surprisingly, concomitant lack of GPV and CLEC-2 deteriorated blood-lymphatic misconnections observed in Clec2-/- mice resulting in severe edema formation and intestinal inflammation. Analysis of lymphatic and vascular development in embryonic mesenteries revealed severely defective blood-lymph-vessel separation, which translated into thrombocytopenia and increased vascular permeability due to reduced tight junction density in mesenteric blood vessels and consequent leakage of blood into the peritoneal cavity.
Recently, platelet granule release has been proposed to ameliorate the progression of retinopathy of prematurity (ROP), a fatal disease in newborns leading to retinal degradation. The mechanisms governing platelet activation in this process remained elusive nonetheless, which prompted us to investigate a possible role of ITAM signaling. In the second part of this thesis, granule release during ROP was shown to be GPVI- and partly CLEC-2-triggered since blockade or loss of these receptors markedly deteriorated ROP progression.
Proplatelet formation from MKs is highly dependent on a functional microtubule and actin cytoskeleton, the latter of which is regulated by several actin-monomer binding proteins including Cofilin1 and Twinfilin1 that have been associated with actin-severing at pointed ends. In the present study, a redundancy between both proteins especially important for the guided release of proplatelets into the bloodstream was identified, since deficiency in both proteins markedly impaired MK functionality mainly due to altered actin-microtubule crosstalk.
Besides ITAM-triggered activation, platelets and MKs are dependent on inhibitory receptors, which prevent overshooting activation. We here identified macrothrombocytopenic mice with a mutation within Mpig6b encoding the ITIM-bearing receptor G6b-B. G6b-B-mutant mice developed a severe myelofibrosis associated with sex-specific bone remodeling defects resulting in osteosclerosis and -porosis in female mice. Moreover, G6b-B was shown to be indispensable for MK maturation as verified by a significant reduction in MK-specific gene expression in G6b-B-mutant MKs due to reduced GATA-1 activity.
Functional analysis of polarization and podosome formation of murine and human megakaryocytes
(2019)
In mammals, blood platelets are produced by large bone marrow (BM) precursor cells, megakaryocytes (MK) that extend polarized cell protrusions (proplateles) into BM sinusoids. Proplatelet formation (PPF) requires substantial cytoskeletal rearrangements that have been shown to involve the formation of podosomes, filamentous actin (F-actin) and integrin-rich structures. However, the exact molecular mechanisms regulating MK podosome formation, polarization and migration within the BM are poorly defined. According to current knowledge obtained from studies with other cell types, these processes are regulated by Rho GTPase proteins like RhoA and Cdc42.
In this thesis, polarization and podosome formation were investigated in MKs from genetically modified mice, as well as the cell lines K562 and Meg01 by pharmacological modulation of signaling pathways.
The first part of this thesis describes establishment of the basic assays for investigation of MK polarization. Initial data on polarization of the MK-like erythroleukemia cell line K562 revealed first insights into actin and tubulin dynamics of wild type (WT) and RhoA knock-out (RhoA-/-) K562 cells. Phorbol 12-myristate 13-acetate (PMA)-induction of K562 cells led to the expected MK-receptor upregulation but also RhoA depletion and altered polarization patterns.
The second part of this thesis focuses on podosome formation of MKs. RhoA is shown to be dispensable for podosome formation. Cdc42 is revealed as an important, but not essential regulator of MK spreading and podosome formation. Studies of signaling pathways of podosome formation reveal the importance of the tyrosine kinases Src, Syk, as well as glycoprotein (GP)VI in MK spreading and podosome formation.
This thesis provides novel insights into the mechanisms underlying polarization and podosome formation of MKs and reveals new, important information about cytoskeletal dynamics of MKs and potentially also platelets.
Platelet activation and aggregation at sites of vascular injury is critical to prevent excessive blood loss, but may also lead to life-threatening ischemic diseases, such as myocardial infarction and stroke. Extracellular agonists induce platelet activation by stimulation of platelet membrane receptors. Signal transduction results in reorganization of the cytoskeleton, shape change, platelet adhesion and aggregation, cumulating in thrombus formation. Several Rho GTPases, including Rac1, Cdc42 and RhoA, are essential mediators of subsequent intracellular transduction of ITAM- and GPCR-signaling. Therefore, inhibition or knockout can result in severely defective platelet signaling.
Mice with platelet specific Rac1-deficiency are protected from arterial thrombosis. This benefit highlights further investigation of Rac1-specific functions and its potential as a new pharmacological target for prevention of cardiovascular diseases. Two newly developed synthetic compounds, NSC23766 and EHT1864, were proposed to provide highly specific inhibition of Rac1 activity, but both drugs have never been tested in Rac1-deficient cell systems to rule out potential Rac1-independent effects.
This study revealed significant off-target effects of NSC23766 and EHT1864 that occurred in a dose-dependent fashion in both wild-type and Rac1-deficient platelets. Both inhibitors individually affected resting platelets after treatment, either by altering membrane protein expression (NSC23766) or by a marked decrease of platelet viability (EHT1864). Platelet apoptosis could be confirmed by enhanced levels of phosphatidylserine exposure and decreased mitochondrial membrane potential. Phosphorylation studies of the major effector proteins of Rac1 revealed that NSC23766 and EHT1864 abolish PAK1/PAK2 activation independently of Rac1 in wild-type and knockout platelets, which may contribute to the observed off-target effects.
Additionally, this study demonstrated the involvement of Rac1 in G protein-coupled receptor-mediated platelet activation and GPIb-induced signaling. Furthermore, the data revealed that Rac1 is dispensable in the process of integrin IIb 3-mediated clot retraction.
This study unveiled that new pharmacological approaches in antithrombotic therapy with Rac1 as molecular target have to be designed carefully in order to obtain high specificity and minimize potential off-target effects.
In mammals, anucleate blood platelets are constantly produced by their giant bone marrow (BM) progenitors, the megakaryocytes (MKs), which originate from hematopoietic stem cells. Megakaryopoiesis and thrombopoiesis have been studied intensively, but the exact mechanisms that control platelet generation from MKs remain poorly understood. Using multiphoton intravital microscopy (MP-IVM), thrombopoiesis and proplatelet formation were analyzed in the murine BM in real-time and in vivo, identifying an important role for several proteins, including Profilin1, TRPM7 and RhoA in thrombopoiesis. Currently, it is thought that blood cell precursors, such as MKs, migrate from the endosteal niche towards the vascular niche during maturation. In contrast to this paradigm, it was shown that MKs are homogeneously distributed within the dense BM blood vessel network, leaving no space for vessel-distant niches. By combining results from in vivo MP-IVM, in situ light-sheet fluorescence microscopy (LSFM) of the intact BM as well as computational simulations, surprisingly slow MK migration, limited intervascular space and a vessel-biased MK pool were revealed, contradicting the current concept of directed MK migration during thrombopoiesis.
Platelets play an essential role in hemostasis and thrombosis, but also in the pathogenesis of ischemic stroke. Ischemic stroke, which is mainly caused by thromboembolic occlusion of brain arteries, is among the leading causes of death and disability worldwide with limited treatment options. The platelet collagen receptor glycoprotein (GP) VI is a key player in arterial thrombosis and a critical determinant of stroke outcome, making its signaling pathway an attractive target for pharmacological intervention. The spleen tyrosine kinase (Syk) is an essential signaling mediator downstream of GPVI, but also of other platelet and immune cell receptors. In this thesis, it was demonstrated that mice lacking Syk specifically in platelets are protected from arterial thrombus formation and ischemic stroke, but display unaltered hemostasis. Furthermore, it was shown that mice treated with the novel, selective and orally bioavailable Syk inhibitor BI1002494 were protected in a model of arterial thrombosis and had smaller infarct sizes and a significantly better neurological outcome 24 h after transient middle cerebral artery occlusion (tMCAO), also when BI1002494 was administered therapeutically, i.e. after ischemia. These results provide direct evidence that pharmacological Syk inhibition might become a safe therapeutic strategy. The T cell receptor chain-associated protein kinase of 70 kDA (Zap-70) is also a spleen tyrosine kinase family member, but has a lower intrinsic activity compared to Syk and is expressed in T cells and natural killer (NK) cells, but not in platelets. Unexpectedly, arterial thrombus formation in vivo can occur independently of Syk kinase function as revealed by studies in Sykki mice, which express Zap-70 under the control of intrinsic Syk promoter elements.
The thesis provides insights in reconstruction and analysis pipelines for processing of
three-dimensional cell and vessel images of megakaryopoiesis in intact murine bone.
The images were captured in a Light Sheet Fluorescence Microscope. The work
presented here is part of Collaborative Research Centre (CRC) 688 (project B07) of
the University of Würzburg, performed at the Rudolf-Virchow Center. Despite ongoing
research within the field of megakaryopoiesis, its spatio-temporal pattern of
megakaryopoiesis is largely unknown. Deeper insight to this field is highly desirable to
promote development of new therapeutic strategies for conditions related to
thrombocytopathy as well as thrombocytopenia. The current concept of
megakaryopoiesis is largely based on data from cryosectioning or in vitro studies
indicating the existence of spatial niches within the bone marrow where specific stages
of megakaryopoiesis take place. Since classic imaging of bone sections is typically
limited to selective two-dimensional views and prone to cutting artefacts, imaging of
intact murine bone is highly desired. However, this has its own challenges to meet,
particularly in image reconstruction. Here, I worked on processing pipelines to account
for irregular specimen staining or attenuation as well as the extreme heterogeneity of
megakaryocyte morphology. Specific challenges for imaging and image reconstruction
are tackled and solution strategies as well as remaining limitations are presented and
discussed. Fortunately, modern image processing and segmentation strongly benefits
from continuous advances in hardware as well as software-development. This thesis
exemplifies how a combined effort in biomedicine, computer vision, data processing
and image technology leads to deeper understanding of megakaryopoiesis. Tailored
imaging pipelines significantly helped elucidating that the large megakaryocytes are
broadly distributed throughout the bone marrow facing a surprisingly dense vessel
network. No evidence was found for spatial niches in the bone marrow, eventually
resulting in a revised model of megakaryopoiesis.
Divalent cations are important second messengers triggering various signal transduction events in platelets. Whereas calcium channel blockers have an established antithrombotic effect and the regulation of Ca2+ homeostasis has been elucidated in platelets, the molecular regulation of Mg2+ and Zn2+ homeostasis has not been investigated so far.
In the first part of the thesis, the role of -type serine-threonine kinase linked to transient receptor potential cation channel, subfamily M, member 7 (TRPM7) in platelets was investigated. Using Trpm7R/R mice with a point mutation deleting the kinase activity, we showed that the TRPM7 kinase regulates platelet activation via immunoreceptor tyrosine-based activation motif (ITAM), hem(ITAM) and protease-activated receptor (PAR) signaling routes. Furthermore, Trpm7R/R mice were protected from in vivo thrombosis and stroke, thus establishing TRPM7 kinase as a promising anti-thrombotic target.
In the second part of the thesis, the role of TRPM7 channel in a megakaryocyte (MK) and platelet-specific knockout mouse, Trpm7fl/fl-Pf4Cre, was investigated. Here, we observed that depending on the type of stimulation, Trpm7fl/fl-Pf4Cre platelets showed either enhanced or inhibited responses. Although Trpm7fl/fl-Pf4Cre mice were thrombocytopenic, no differences to wildtype mice were observed in models of in vivo thrombosis and stroke. The above two studies highlight that inhibition of TRPM7 kinase but not the channel itself (in MKs and platelets) may be a promising anti-thrombotic strategy.
Besides TRPM7, we investigated the role of magnesium transporter 1 (MAGT1) in platelet Mg2+ homeostasis and found that MAGT1 primarily regulates receptor-operated calcium entry (ROCE) in platelets specifically upon GPVI activation. This physiological crosstalk is triggered by protein kinase C (PKC) isoforms. Platelets from Magt1-/y mice hyper-reacted to GPVI and thromboxane A2 (TXA2) receptor stimulation in vitro. Consequently, Magt1-/y platelets were found to be pro-thrombotic in disease models of thrombosis and stroke.
To compare platelet ITAM-signaling to the immune system, we further investigated the role of MAGT1 in T and B cells. We described the primary role of MAGT1 in mice under pathogen-free conditions. Magt1-/y B cells showed dysregulated Mg2+ and Ca2+ homeostasis upon B-cell receptor activation, thereby altering Syk, LAT, phospholipase C (PLC)2 and PKC phosphorylation. In contrast to human MAGT1-deficient T cells, development and effector functions of mouse Magt1-/y T cells showed no alterations.
Finally, in the last part of the thesis, we described methods to measure intracellular free zinc [Zn2+]i in human and mouse platelets with storage pool disease (SPD). We propose to measure the [Zn2+]i status in SPD platelets as a relatively easy diagnostic to screen platelet granule abnormalities.
Cyclase-associated protein (CAP)2 is an evolutionarily highly conserved actin-binding protein implicated in striated muscle development, carcinogenesis, and wound healing in mammals. To date, the presence as well as the putative role(s) of CAP2 in platelets, however, remain unknown. Therefore, mice constitutively lacking CAP2 (Cap2gt/gt mice) were examined for platelet function. These studies confirmed the presence of both mammalian CAP isoforms, CAP1 and CAP2, in platelets. CAP2-deficient platelets were slightly larger than WT controls and displayed increased GPIIbIIIa activation and P-selectin recruitment in response to the (hem)ITAM-specific agonists collagen-related peptide and rhodocytin. However, spreading of CAP2-deficient platelets on a fibrinogen matrix was unaltered. In conclusion, the functionally redundant CAP1 isoform may compensate for the lack of CAP2 in murine platelets. Moreover, the studies presented in this thesis unveiled a severe macrothrombocytopenia that occurred independently of the targeted Cap2 allele and which was preliminarily termed orphan (orph). Crossing of the respective mice to C57BL/6J wild-type animals revealed an autosomal recessive inheritance. Orph mice were anemic and developed splenomegaly as well as BM fibrosis, suggesting a general hematopoietic defect. Strikingly, BM MKs of orph mice demonstrated an aberrant morphology and appeared to release platelets ectopically into the BM cavity, thus pointing to defective thrombopoiesis as cause for the low platelet counts. Orph platelets exhibited marked activation defects and spread poorly on fibrinogen. The unaltered protein content strongly suggested a defective alpha-granule release to account for the observed hyporesponsiveness. In addition, the cytoskeleton of orph platelets was characterized by disorganized microtubules and accumulations of filamentous actin. However, further experiments are required to elucidate the activation defects and cytoskeletal abnormalities in orph platelets. Above all, the gene mutation responsible for the phenotype of orph mice needs to be determined by next-generation sequencing in order to shed light on the underlying genetic and mechanistic cause.
Das Schädel-Hirn-Trauma (SHT) entsteht durch äußere Gewalteinwirkung auf den Kopf und verursacht mechanisch eine Schädigung des Hirngewebes. Zusätzlich tragen sekundäre Pathomechanismen, wie Entzündungsprozesse und die Schädigung der Blut-Hirn-Schranke (BHS), dazu bei, dass sich das initial geschädigte Läsionsareal im Laufe der Zeit vergrößert. Vor allem bei jungen Erwachsenen ist das SHT eine der häufigsten Ursachen für bleibende Behinderungen und Todesfälle. Aufgrund der schweren Auswirkungen des SHT und der bislang fehlenden Therapieoptionen ist die Identifizierung neuer Zielstrukturen für eine kausale Therapie von größter Bedeutung. Ausgehend von tierexperimentellen Studien ist das Kallikrein-Kinin-System (KKS) ein besonders erfolgversprechender Angriffspunkt zur Behandlung des SHT. Die Aktivierung des KKS über den Gerinnungsfaktor XII (FXII) und die darauf folgende Bildung von Bradykinin sind mit dem Entstehen von Hirnödemen und Entzündungsreaktionen assoziiert. Vorangegangene Studien haben weiterhin die Frage aufgeworfen, ob und in welchem Maße thrombotische Prozesse einen Einfluss auf die Pathophysiologie und die sekundären Hirnschädigungen nach SHT haben. Da FXII sowohl das KKS als auch die intrinsische plasmatische Gerinnungskaskade initiiert und somit zur Fibrinbildung beiträgt, stand FXII im Mittelpunkt der Untersuchungen dieser Dissertation. Die vorliegende Arbeit beschäftigt sich mit den Fragen, (I) inwiefern FXII eine Rolle bei der sekundären Hirnschädigung nach Trauma spielt und (II) ob thrombotische Prozesse ein pathophysiologisches Merkmal nach Trauma darstellen. In zwei unterschiedlichen Trauma-Modellen wurden FXII-defiziente Tiere und mit einem spezifischen Inhibitor des aktivierten FXII (FXIIa) behandelte Tiere gegen Kontrolltiere nach SHT verglichen. Die Analyse der funktionellen Ausfallerscheinungen und des Ausmaßes an neuronaler Degeneration zeigte, dass FXII-Defizienz und FXIIa-Inhibition vor den Auswirkungen eines SHT schützen. Als zugrundeliegende Mechanismen wurden die Reduktion von thrombotisch verschlossenen Gefäßen in der Mikrovaskulatur des Gehirns sowie der Schutz vor BHS-Störungen und verringerte inflammatorische Prozesse identifiziert. Weiterhin wurde festgestellt, dass eine Blockade der intrinsischen Gerinnungskaskade über FXII keine intrazerebralen Blutungen auslöst. In Gewebeproben von Patienten mit SHT wurde gezeigt, dass Thrombozytenaggregate auch im klinischen Verlauf auftreten und sich somit die tierexperimentellen Befunde auf die humane Situation übertragen lassen. Insgesamt tragen die Ergebnisse dazu bei, die komplexen und vielfältigen Pathomechanismen nach SHT besser zu verstehen und vor allem die Relevanz thrombo-inflammatorischer Prozesse nach SHT aufzuzeigen. Die gezielte Blockade des FXII(a) könnte als therapeutisches Prinzip zur Abschwächung der Sekundärschaden nach SHT geeignet sein.
Platelet activation and aggregation at sites of vascular injury involves massive cytoskeletal re-organization, which is required for proper platelet function. Moreover, the cytoskeleton plays central roles in megakaryo- and thrombopoiesis. Thus, cytoskeletal protein aberrations can be the underlying reason for many pathological phenotypes. Although intensive research is carried out to identify the key players involved in cytoskeletal reorganization, the signaling cascades orchestrating these complex processes are still poorly understood. This thesis investigates the role of three actin-binding proteins, Coactosin-like (Cotl) 1, Profilin (Pfn) 1 and Thymosin (T) β4, in platelet formation and function using genetically modified mice.
ADF-H-containing proteins such as Twinfilin or Cofilin are well characterized as regulators of thrombopoesis and cytoskeletal reorganization. Although Cotl1 belongs to the ADF-H protein family, lack of Cotl1 did not affect platelet count or cytoskeletal dynamics. However, Cotl1-deficiency resulted in significant protection from arterial thrombus formation and ischemic stroke in vivo. Defective GPIb-vWF interactions and altered second wave mediator release present potential reasons for the beneficial effect of Cotl1-deficiency. These results reveal an unexpected function of Cotl1 as a regulator of thrombosis and hemostasis, establishing it as a potential target for a safe therapeutic therapy to prevent arterial thrombosis or ischemic stroke.
Recent studies showed that the organization of the circumferential actin cytoskeleton modulates calpain-mediated αIIbβ3 integrin closure, thereby also controlling αIIbβ3 integrin localization. The second part of this thesis identified the actin-sequestering protein Pfn1 as a central regulator of platelet integrin function as Pfn1-deficient platelets displayed almost abolished αIIbβ3 integrin signaling. This translated into a profound protection from arterial thrombus formation and prolonged tail bleeding times in vivo which was caused by enhanced calpain-dependent integrin closure. These findings further emphasize the importance of a functional actin cytoskeleton for intact platelet function in vitro and in vivo.
Tβ4 is a moonlighting protein, acting as one of the major actin-sequestering proteins in cells of higher eukaryotes and exerting various paracrine functions including anti-inflammatory, immunomodulatory and pro-angiogenic effects. Although excessively studied, its role for cytoskeletal dynamics, the distinction between endo- and exogenous protein function and its uptake and release mechanisms are still poorly understood. Constitutive Tβ4-deficiency resulted in thrombocytopenia accompanied by a largely diminished G-actin pool in platelets and divergent effects on platelet reactivity. Pre-incubation of platelets with recombinant Tβ4 will help to understand the function of endo- and exogenous protein, which is under current investigation.
Durch die Verwendung radioaktiver Substanzen mit ihrer schädigenden Wirkung auf den menschlichen Körper besteht in der Positronen-Emissions-Tomographie (PET) ein fortwährendes Interesse an der Reduktion der applizierten Dosis bei gleichbleibender Qualität der Ergebnisse. Zusätzlich ist im Hinblick auf die Wirtschaftlichkeit der Systeme eine Reduktion sowohl der Akquisitions- als auch der Rekonstruktionszeit erstrebenswert. In dieser Arbeit werden zwei Möglichkeiten vorgestellt, diese Ziele durch den Einsatz von Compressed Sensing (CS) zu erreichen.
Neben der Entwicklung neuartiger Rekonstruktionsalgorithmen können Filtertechniken eingesetzt werden, um eine qualitative Verbesserung rekonstruierter Bilder zu erzielen. Der Vorteil eines Filters besteht unter anderem darin, dass diese retrospektiv angewandt werden können. Es ist folglich möglich, die Qualität eines Bildes zu überprüfen und lediglich im Bedarfsfall einen Filter einzusetzen.
Die Technik des CS war in den letzten Jahren Gegenstand zahlreicher Forschungsarbeiten im Bereich der Bildgebung, insbesondere in der Magnetresonanztomographie und der Computertomographie (CT). Mit CS könnten bildgebende Verfahren wie die CT oder die PET mit weniger Messungen durchgeführt werden, wodurch sich die Messzeit und die Strahlenexposition reduziert. In der molekularen Bildgebung mit der PET ist CS jedoch weitgehend unbekannt.
Im ersten Teil dieser Dissertation wird eine Methode vorgestellt, welche CS als Filtertechnik in der PET einsetzt. Den Ausgangspunkt stellt ein vollständiger, analytisch rekonstruierter Datensatz dar. Dieser wird mit einer Reihe unterschiedlicher Abtastmuster retrospektiv unterabgetastet und jeweils erneut, unter Verwendung von CS rekonstruiert. Im rauschfreien Fall würde CS stets das Originalbild liefern. Das überlagerte Rauschen führt jedoch zu Artefakten und einer Verschlechterung des Ergebnisses. CS kann nun einerseits das Rauschen vermindern. Andererseits ist es durch die Mittelung mehrerer unterschiedlicher Rekonstruktionen möglich, die Artefakte zu reduzieren. Auf diesem Weg kann die Bildqualität signifikant verbessert werden. Es konnte gezeigt werden, dass die Technik sowohl für 2D, als auch für 3D Datensätze verwendet werden kann. Die größten qualitativen Verbesserungen werden erzielt, wenn der Datensatz lediglich aus wenigen Ereignissen besteht. In diesem Fall ist die Bildqualität der analytischen Rekonstruktionen extrem schlecht, die Verbesserung durch die Filtertechnik mit CS und die damit verbundene Erhöhung des Signal-Rausch-Verhältnisses jedoch am größten. Bei diesen Datensätzen können die Ergebnisse iterativer Rekonstruktionen übertroffen werden. In der Praxis wäre damit ein Einsatz speziell bei dynamischen oder getriggerten Aufnahmen denkbar. In beiden Fällen basieren die Rekonstruktionen nicht selten auf wenigen Ereignissen. Die resultierenden Bilder sind häufig von schlechter Qualität, womit eine Verbesserung durch Filterung sinnvoll ist.
Der zweite Teil dieser Arbeit beschäftigt sich mit der Rohdaten-basierten Triggerung am Kleintier-PET sowie mit dem Einsatz von CS zur Reduktion der Rekonstruktionszeit. Frühere Veröffentlichungen zeigten bereits die Anwendbarkeit Rohdaten-basierter Triggermethoden bei humanen Datensätzen. Im Hinblick auf eine präklinische Anwendung, speziell bei Datensätzen mit dem Fokus auf Mäuseherzen, existieren jedoch nur wenige Studien. In dieser Arbeit wird gezeigt, dass die segmentierte Methode des Massenschwerpunkts (COMseg) eine Technik darstellt, welche die kardiale Triggerung sowohl bei Datensätzen von Ratten, als auch von Mäusen erlaubt.
Ein nicht zu unterschätzender Nachteil der COMseg besteht darin, dass vor deren Anwendung die List-Mode Datei in kleine Zeitframes unterteilt und in Sinogramme sortiert werden muss. Auf jedes Sinogramm wird im Anschluss ein Rebinning Algorithmus angewandt. Dies stellt einen enormen Zeitaufwand dar, wodurch sich eine Anwendung bei größeren Studien in der Praxis als schwierig erweist. Ziel der Triggermethoden ist die Gewinnung eines Triggersignals, durch welches beispielsweise der Herzschlag in mehrere Phasen aufgeteilt werden kann. Das Triggersignal hat für gewöhnlich eine dünnbesetzte Repräsentation im Frequenzraum. Dieses Vorwissen ermöglicht den Einsatz von CS. Anstelle des vollständigen Datensatzes wurde lediglich ein Teil der Daten in kleine Zeitframes sortiert und mit der COMseg ausgewertet. Aus diesem unterabgetasteten Datensatz wird mit Hilfe von CS das vollständige Triggersignal rekonstruiert. Die Stärke der Unterabtastung entspricht in etwa dem Faktor der Reduktion der Rekonstruktionszeit. Auf diesem Weg ist es möglich, eine signifikante Beschleunigung zu erzielen. Die Anwendung dieser Technik ist jedoch nicht auf die COMseg beschränkt. Prinzipiell kann das Verfahren bei allen Methoden der Rohdaten-basierten Triggerung angewandt werden, welche es erlauben, die Abtastpunkte des Signals separat zu berechnen. Damit werden Algorithmen interessant, deren Einsatz aufgrund aufwändiger Berechnungen bislang in der Praxis nicht sinnvoll war.
Zusammenfassend legen die in dieser Arbeit vorgestellten Daten nahe, dass CS ein neuartiges Werkzeug in der PET darstellen könnte, mit welchem eine Filterung von Bildern sowie eine Reduktion der Rekonstruktionszeit möglich ist.
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.
Platelets are continuously produced from megakaryocytes (MK) in the bone marrow by a cytoskeleton-driven process of which the molecular regulation is not fully understood.
As revealed in this thesis, MK/ platelet-specific Profilin1 (Pfn1) deficiency results in micro- thrombocytopenia, a hallmark of the Wiskott-Aldrich syndrome (WAS) in humans, due to accelerated platelet turnover and premature platelet release into the bone marrow. Both Pfn1-deficient mouse platelets and platelets isolated from WAS patients contained abnormally organized and hyper-stable microtubules. These results reveal an unexpected function of Pfn1 as a regulator of microtubule organization and point to a previously unrecognized mechanism underlying the platelet formation defect in WAS patients.
In contrast, Twinfilin2a (Twf2a) was established as a central regulator of platelet reactivity and turnover. Twf2a-deficient mice revealed an age-dependent macrothrombocytopenia that could be explained by a markedly decreased platelet half-life, likely due to the pronounced hyper-reactivity of \(Twf2a^{-/-}\) platelets. The latter was characterized by sustained integrin acti- vation and thrombin generation in vitro that translated into accelerated thrombus formation in vivo. To further elucidate mechanisms of integrin activation, Rap1-GTP-interacting adaptor molecule (RIAM)-null mice were generated. Despite the proposed critical role of RIAM for platelet integrin activation, no alterations in this process could be found and it was concluded that RIAM is dispensable for the activation of β1 and β3 integrins, at least in platelets. These findings change the current mechanistic understanding of platelet integrin activation.
Outside-in signaling by integrins and other surface receptors was supposed to regulate MK migration, but also the temporal and spatial formation of proplatelet protrusions. In this the- sis, phospholipase D (PLD) was revealed as critical regulator of actin dynamics and podo- some formation in MKs. Hence, the unaltered platelet counts and production in \(Pld1/2^{-/-}\) mice and the absence of a premature platelet release in the bone marrow of \(Itga2^{-/-}\) mice question the role of podosomes in platelet production and raise the need to reconsider the proposed inhibitory signaling by α2β1 integrins on proplatelet formation.
Non-muscle myosin IIA (NMMIIA) has been implicated as a downstream effector of the in- hibitory signals transmitted via α2β1 integrins. Besides Rho-GTPase signaling, also \(Mg^{2+}\) and transient receptor potential melastatin-like 7 (TRPM7) channel α-kinase are known regulators of NMMIIA activity. In this thesis, TRPM7 was identified as major regulator of \(Mg^{2+}\) homeostasis in MKs and platelets. Furthermore, decreased \([Mg^{2+}]_i\) led to deregulated NMMIIA activity and altered cytoskeletal dynamics that impaired thrombopoiesis and resulted in macrothrombocytopenia in humans and mice.
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.
Der Natrium-D-Glukose Kotransporter 1 (SGLT1) spielt eine wichtige Rolle bei der Aufnahme von Glukose aus dem Darmlumen in die Enterozyten des Darms. Anhand von Untersuchungen an Xenopus laevis-Oozyten konnte in unserem Labor das Protein RS1 als posttranslationales Regulatorprotein für SGLT1 und diverse andere Transporter ermittelt werden. Es wurde eine regulatorische Domäne aus RS1 mit vielen potentiellen Phosphorylierungsstellen isoliert (RS1-Reg) und gezeigt dass RS1-Reg die Abschnürung von Transporter enthaltenen Vesikeln vom Transgolgi-Netzwerk hemmt. Neben SGLT1 reguliert RS1 auch die konzentrierenden Nukleosidtransporter (CNTs) am TGN. Die Regulation der Transporter ist vom Phosphorylierungszustand von RS1-Reg abhängig. So wurde durch Versuche an Oozyten von Xenopus laevis und Injektion von RS1-Reg Mutanten gezeigt, dass die Phosphorylierung von RS1-Reg an einigen Stellen zu einer Inhibition von SGLT1 führte, während der Nukleosidtransporter CNT1 durch die dephosphorylierte Mutante herunterreguliert wurden. Neben der phosphorylierungsabhängigen Regulation konnte für SGLT1 auch gezeigt werden, dass die Herunterregulation nur unter Niedrigzucker-Bedingungen erfolgte, nicht jedoch bei hohen Glukosekonzentrationen. Für die CNTs war eine derartige Zuckerabhängigkeit nicht zu beobachten.
Im Rahmen der vorliegenden Studie wurde untersucht, ob die Ergebnisse aus den Oozytenmessungen auch in vivo in einem Säugetier gezeigt werden können. Hierzu wurden Mutanten der regulatorischen Domäne (RS1-Reg) des Maus-Proteins, welche den phosphorylierten Zustand simulierten (RS1-Reg (S19E)), oder die Phosphorylierung verhinderten (RS1-Reg (S19A)) eingesetzt. Diese wurden an ein Nanohydrogel gekoppelt, um eine Aufnahme in die Enterozyten im Darm zu gewährleisten. Es wurde in der RS1KO-Mausohne funktionelles RS1 gezeigt, dass auch im in vivo-System eine Herunterregulation von SGLT1 durch mRS1-Reg (S19E), nicht jedoch durch mRS1-Reg (S19A) erfolgte, während die CNTs nur durch mRS1-Reg (S19A) inhibiert wurden. Des Weiteren führte mRS1-Reg (S19A) in der Wildtypmaus bei niedrigen Zuckerkonzentrationen zu einer Stimulation von SGLT1, was für eine Kompetition mit dem endogenen RS1-Proteins spricht. Es konnte indirekt der Beweis erbracht werden, dass über Nanohydrogele längere Proteine in die Zelle gebracht werden können und dort funktionell freigesetzt werden.
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.
Platelets are small anucleated cell fragments that originate from megakaryocytes (MKs), which are large cells located in the bone marrow (BM). MKs extend long cytoplasmic protrusions, a process which is called proplatelet formation, into the lumen of the sinusoidal vessels where platelets are sized by the bloodstream. During the process of platelet biogenesis, segments of the MK penetrate the endothelium and, through cytoskeletal remodeling inside the MK, proplatelet fragments are released. Rho GTPases, such as RhoA and RhoB, are critically involved in cytoskeletal rearrangements of both the actin and the tubulin cytoskeleton.
The first part of this thesis concentrated on the protein RhoB and its involvement in cytoskeletal organization in MKs and platelets. Single knockout (KO) mice lacking RhoB had a minor microthrombocytopenia, which means a smaller platelet size and reduced platelet number, accompanied by defects in the microtubule cytoskeleton in both MKs and platelets. In particular, tubulin organization and stability, which is regulated by posttranslational modifications of α-tubulin, were disturbed in RhoB-/- platelets. In contrast, RhoB-/- MKs produced abnormally shaped proplatelets but had unaltered posttranslational modifications of α-tubulin.
The second part focused on the influence of RhoA and RhoB on MK localization and platelet biogenesis in murine BM. Many intact RhoA-/- MKs are able to transmigrate through the endothelial layer and stay attached to the vessel wall, whereas only 1% of wildtype (wt) MKs are detectable in the intrasinusoidal space. Concomitant deficiency of RhoA and RhoB reverts this transmigration and results in macrothrombocytopenia, MK clusters around the vessel in the BM and defective MK development. The underlying mechanism that governs MKs to distinct localizations in the BM is poorly understood, thus this thesis suggests that this process may be dependent on RhoB protein levels, as RhoA deficiency is coincided with increased RhoB levels in MKs and platelets.
The third part of this thesis targeted the protein PDK1, a downstream effector of Rho GTPases, in regard to MK maturation and polarization throughout thrombopoiesis. MK- and platelet-specific KO in mice led to a significant macrothrombocytopenia, impaired actin cytoskeletal reorganization during MK spreading and proplatelet formation, with defective MK maturation. This was associated with decreased PAK activity and, subsequently, phosphorylation of its substrates LIMK and Cofilin. Together, the observations of this thesis highlight the importance of Rho GTPases and their downstream effectors on the regulation of the MK and platelet cytoskeleton.
Influence of interleukin-6-type cytokine oncostatin M on murine aortic vascular smooth muscle cells
(2018)
Oncostatin M (OSM) is a cytokine of the interleukin-6 family and released in the early
phase of inflammation by neutrophils, activated macrophages, dendritic cells, and T
lymphocytes. Its roles in physiology and disease are not entirely understood yet. It
has been shown recently that substantial amounts of OSM are found in atherosclerotic
plaques.
The first part of this thesis addresses the effects of OSM on vascular smooth muscle
cells (VSMCs). This cell type is known to contribute to atherogenesis and expresses
the type I and type II OSM receptor complexes. This study revealed that OSM is a
strong inducer of an array of genes which have recently been shown to play important
roles in atherosclerosis. Investigation of VSMCs isolated from OSMRbeta-deficient
(Osmr-/-) mice proved that the regulation of these target genes is entirely dependent
on the activation of the type II OSMR complex. In addition to OSM, other cytokines
expressed by T lymphocytes were found to contribute to plaque development. According
to earlier publications, the influence of IL-4, IL-13, and IL-17 on the progression of
plaques were discussed controversially. Nevertheless, for the regulation of investigated
atherosclerotic target genes and receptor complexes in VSMCs, they seemed to play a
minor role compared to OSM. Only the expression of the decoy receptor IL-13Ralpha2 - a
negative feedback mechanism for IL-13-mediated signalling - was strongly induced after
treatment with all mentioned cytokines, especially when VSMCs were primed with OSM
before stimulation.
The second part of this thesis focuses on the role of OSM during the progression of
atherosclerosis in vivo. Therefore, Ldlr-/-Osmr-/- mice were generated by crossing Ldlr-/-
mice - a typical mouse model for atherosclerosis - with Osmr-/- mice. These double-deficient
mice together with Ldlr-/-Osmr+/+ mice were set on cholesterol rich diet (Western
diet, WD) for 12 weeks before they were sacrificed. Determination of body and
organ weight, staining of aortas and aortic roots as well as gene expression profiling
strongly suggested that Ldlr-/-Osmr-/- mice are less susceptible for plaque development
and weight gain compared to Ldlr-/-Osmr+/+ mice. However, further experiments and
additional controls (C57Bl/6 and Osmr-/- mice) on WD are necessary to clarify the
underlying molecular mechanisms.
Taken together, the interleukin-6-type cytokine OSM is a strong inducer of an array of
target genes involved in de-differentiation and proliferation of VSMCs, a process known
to contribute substantially to atherogenesis. Further in vivo studies will help to clarify
the role of OSM in atherosclerosis.
Studies on the role of platelet serotonin in platelet function, hemostasis, thrombosis and stroke
(2019)
Platelet activation and aggregation are important processes in hemostasis resulting in reduction of blood loss upon vessel wall injury. However, platelet activation can lead to thrombotic events causing myocardial infarction and stroke. A more detailed understanding of the regulation of platelet activation and the subsequent formation of thrombi is essential to prevent thrombosis and ischemic stroke. Cations, platelet surface receptors, cytoskeletal rearrangements, activation of the coagulation cas-cade and intracellular signaling molecules are important in platelet activation and thrombus formation. One such important molecule is serotonin (5 hydroxytryptamin, 5 HT), an indolamine platelet agonist, biochemically derived from tryptophan. 5 HT is secreted from the enterochromaffin cells into the gastrointestinal tract (GI) and blood. Blood borne 5 HT has been proposed to regulate hemostasis by acting as a vaso-constrictor and by triggering platelet signaling through 5 HT2A receptor. Although platelets do not synthetize 5 HT, they take it up from the blood and store it in their dense granules which are secreted upon platelet activation. To identify the molecu-lar composite of the 5 HT uptake system in platelets and elucidate the role of platelet released 5-HT in thrombosis and ischemic stroke, 5 HT transporter knock out mice (5Htt / ) were analyzed in different in vitro and in vivo assays and in a model of is-chemic stroke. In 5Htt / platelets, 5 HT uptake from the blood was completely abol-ished and agonist-induced Ca2+ influx through store operated Ca2+ entry (SOCE), integrin activation, degranulation and aggregation responses to glycoprotein (GP) VI and C type lectin-like receptor 2 (CLEC 2) were reduced. These observed in vitro defects in 5Htt / platelets could be normalized by the addition of exogenous 5 HT. Moreover, reduced 5 HT levels in the plasma, an increased bleeding time and the formation of unstable thrombi were observed ex vivo under flow and in vivo in the abdominal aorta and carotid artery of 5Htt / mice. Surprisingly, in the transient middle cerebral artery occlusion model (tMCAO) of ischemic stroke 5Htt / mice showed near-ly normal infarct volumes and a neurological outcome comparable to control mice. Although secreted platelet 5 HT does not appear to play a crucial role in the devel-opment of reperfusion injury after stroke, it is essential to amplify the second phase of platelet activation through SOCE and thus plays an important role in thrombus stabilization.
To further investigate the role of cations, granules and their contents and regulation of integrin activation in the process of thrombus formation, genetically modified mice were analyzed in the different in vivo thrombosis models. Whereas Tph1 / mice (lacking the enzyme responsible for the production of 5 HT in the periphery), Trpm7KI (point mu-tation in the kinase domain of Trpm7 channel, lacking kinase activity) and Unc13d / /Nbeal2 / mice (lacking α granules and the release machinery of dense granules) showed a delayed thrombus formation in vivo, MagT1y/ mice (lacking a specific Mg2+ transporter) displayed a pro thrombotic phenotype in vivo. Trpm7fl/fl Pf4Cre (lacking the non specific Mg2+ channel) and RIAM / mice (lacking a potential linker protein in integrin “inside out” signaling) showed no alterations in thrombus formation upon injury of the vessel wall.