Refine
Has Fulltext
- yes (39)
Is part of the Bibliography
- yes (39)
Year of publication
Document Type
- Doctoral Thesis (21)
- Journal article (17)
- Report (1)
Keywords
- platelets (39) (remove)
Institute
- Rudolf-Virchow-Zentrum (17)
- Graduate School of Life Sciences (9)
- Institut für Klinische Biochemie und Pathobiochemie (9)
- Institut für Experimentelle Biomedizin (8)
- Neurologische Klinik und Poliklinik (4)
- Medizinische Klinik und Poliklinik I (3)
- Institut für Klinische Transfusionsmedizin und Hämotherapie (2)
- Medizinische Fakultät (2)
- Theodor-Boveri-Institut für Biowissenschaften (2)
- Institut für Klinische Epidemiologie und Biometrie (1)
Sonstige beteiligte Institutionen
EU-Project number / Contract (GA) number
- 766118 (1)
Platelets play an important role in the body, since they are part of the hemostasis
system, preventing and stopping blood loss. Nevertheless, when platelet or
coagulation system function are impaired, uncontrolled bleedings but also irreversible
vessel occlusion followed by ischemic tissue damage can occur. Therefore,
understanding platelet function and activation, mechanisms which are controlled by a
variety of platelet membrane receptors and other factors is important to advance out
knowledge of hemostasis and platelet malfunction. For a complete picture of platelet
function and their modulating behavior it is desired to be able to quantify receptor
distributions and interactions of these densely packed molecular ensembles in the
membrane. This challenges scientists for several reasons. Most importantly, platelets
are microscopically small objects, challenging the spatial resolution of conventional
light microscopy. Moreover, platelet receptors are highly abundant on the membrane
so even super-resolution microscopy struggles with quantitative receptor imaging on
platelets.
With Expansion microscopy (ExM), a new super-resolution technique was introduced,
allowing resolutions to achieve super-resolution without using a super-resolution
microscope, but by combining a conventional confocal microscopy with a highly
processed sample that has been expanded physically. In this doctoral thesis, I
evaluated the potential of this technique for super-resolution platelet imaging by
optimizing the sample preparation process and establishing an imaging and image
processing pipeline for dual-color 3D images of different membrane receptors. The
analysis of receptor colocalization using ExM demonstrated a clear superiority
compared to conventional microscopy. Furthermore, I identified a library of
fluorescently labeled antibodies against different platelet receptors compatible with
ExM and showed the possibility of staining membrane receptors and parts of the
cytoskeleton at the same time.
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.
Die Thienopyridine Ticlopidin und Clopidogrel sind seit mehreren Jahren im klinischen Einsatz als Thrombozytenaggregationshemmer zur Sekundärprophylaxe bei arteriosklerotischen Erkrankungen der Herzgefäße, zerebralen Gefäße sowie der peripheren Arterien. Trotz ihrer nachgewiesenen klinischen Wirksamkeit war der Wirkmechanismus lange Zeit auf die Beschreibung als ADP-Rezeptorantagonist beschränkt. Im Zuge neuerer Erkenntnisse zum Mechanismus der Auslösung einer Aggregation, insbesondere der ADP-vermittelten Aggregation, sollte im Rahmen dieser Dissertation der Wirkmechanismus der Thienopyridine genauer untersucht werden sowie mögliche Auswirkungen auf intrazelluläre Kaskaden, die den aggregationshemmenden Effekt vermitteln. Zu diesem Zweck wurden die Effekte einer Thienopyridin-Einnahme auf die Thrombozytenfunktion gesunder Probanden untersucht. In unseren Versuchen bestätigte sich die gute Wirksamkeit der Substanzen hinsichtlich der deutlichen Reduktion der ADP-vermittelten Aggregation. Vor dem Hintergrund eines damals neu propagierten Drei-Rezeptoren-Modells für die ADP-vermittelte Aggregation konnten wir erstmals den Wirkmechanismus an humanen Thrombozyten auf eine Inhibierung des P2Yac-Rezeptors eingrenzen. Weiterhin konnten wir unter Thienopyridin-Einnahme eine Aufhebung der ADP-vermittelten Hemmung der PG-E1-vermittelten VASP-(VAsodilator-Stimulated Phosphoprotein) Phosphorylierung feststellen und somit einen wichtigen Beitrag zum Verständnis der Wirkung der Substanzen beitragen. Zum besseren Verständnis der zum damaligen Zeitpunkt bereits auf molekularer Ebene bekannten humanen thrombozytären ADP-Rezeptoren P2Y1 und P2X1 wurden diese aus humanen Thrombozyten kloniert und mit verschiedenen Tags versehen in einer Astrozytoma-Zelllinine transient und stabil exprimiert. Es wurden verschiedene zellbiologische Methoden wie Immunpräzipitation, Durchflusszytometrie und Immunfluoreszenz etabliert, die als Grundlage für weitere Untersuchungen der intrazellulären Signalkaskaden der Rezeptoren dienen können. Die stabil exprimierenden Zelllinien dienten zur Verifizierung des pharmakologischen Profils der Rezeptoren, weiterhin konnten bereits erste Versuche zu einer möglichen Regulation der Rezeptoren durch zyklische Nukleotide durchgeführt werden. Durch die Etablierung dieser Zelllininen wurde insgesamt eine gute Grundlage für eine weitere Charakterisierung dieser ADP-Rezeptoren unter besser standardisierbaren Bedingungen geschaffen.
Infektionen mit Streptokokken der Gruppe B (GBS) sind immer noch die häufigste Ursache für early-onset Erkrankungen des Neugeborenen in den Industrieländern, die zu erhöhter neonataler Mortalität und Morbidität führen. Bereits bekannt ist, dass neben verschiedenen anderen Bakterien GBS durch die direkte Interaktion mit Thrombozyten eine Aggregation verursachen können. In dieser Arbeit wurde das Verhalten von septischen und kolonisierenden GBS-Stämmen verglichen. Es konnte gezeigt werden, dass alle GBS-Stämme eine thrombozytäre Formänderung veranlassen; jedoch führen nur von septischen Patienten isolierte Stämme zur Thrombozytenaggregation sowie zur P-Selektinexpression. Septische GBS-Stämme binden Fibrinogen auf ihrer Oberfläche und induzieren die thrombozytäre Thromboxansynthese und Granulasekretion, während kolonisierende GBS-Stämme dies nicht können. p38-mitogen-aktivierte Proteinkinase (p38-MAPK) wurde bevorzugt durch aus septischen Patienten isolierte GBS-Stämme aktiviert, ebenfalls scheint Proteinkinase C (PKC) durch diese aktiviert zu werden. Alle GBS-Stämme aktivierten Phospholipase CgammaII (PLCgammaII), Calzium-Calmodulin-abhängige Kinase II (CaMKII) und bewirken Myosinleichtketten (MLC)-Phosphorylierung über Fcgamma-Rezeptor IIA abhängige Signalwege. Es gibt weder einen Unterschied noch einen additiven Effekt zwischen der Aggregation induziert durch GBS und der Aggregation durch GBS und einer geringen Menge Adenosindiphosphat (ADP). Diese Kenntnisse der molekularen Mechanismen von GBS-induzierten Signalwegen in menschlichen Thrombozyten werden zu einem besseren Verständnis von Bakterieneffekten auf die Thrombozytenaktivierung beitragen und können deshalb neue molekulare Ziele für die pharmakologische Behandlung von GBS sein.
High-mobility group box 1 protein (HMGB1) is a damage-associated molecular pattern (DAMP) involved in neutrophil extracellular trap (NET) formation and thrombosis. NETs are regularly found in cerebral thromboemboli. We here analyzed associated HMGB1 expression in human thromboemboli retrieved via mechanical thrombectomy from 37 stroke patients with large vessel occlusion. HMGB1 was detected in all thromboemboli, accounting for 1.7% (IQR 0.6–6.2%) of the total thromboemboli area and was found to be colocalized with neutrophils and NETs and in spatial proximity to platelets. Correlation analysis revealed that the detection of HMGB1 was strongly related to the number of neutrophils (r = 0.58, p = 0.0002) and platelets (r = 0.51, p = 0.001). Our results demonstrate that HMGB1 is a substantial constituent of thromboemboli causing large vessel occlusion stroke.
Background
Direct interaction between Red blood cells (RBCs) and platelets is known for a long time. The bleeding time is prolonged in anemic patients independent of their platelet count and could be corrected by transfusion of RBCs, which indicates that RBCs play an important role in hemostasis and platelet activation. However, in the last few years, opposing mechanisms of platelet inhibition by RBCs derived nitric oxide (NO) were proposed. The aim of our study was to identify whether RBCs could produce NO and activate soluble guanylate cyclase (sGC) in platelets.
Methods
To test whether RBCs could activate sGC under different conditions (whole blood, under hypoxia, or even loaded with NO), we used our well-established and highly sensitive models of NO-dependent sGC activation in platelets and activation of purified sGC. The activation of sGC was monitored by detecting the phosphorylation of Vasodilator Stimulated Phosphoprotein (VASPS239) by flow cytometry and Western blot. ANOVA followed by Bonferroni’s test and Student’s t-test were used as appropriate.
Results
We show that in the whole blood, RBCs prevent NO-mediated inhibition of ADP and TRAP6-induced platelet activation. Likewise, coincubation of RBCs with platelets results in strong inhibition of NO-induced sGC activation. Under hypoxic conditions, incubation of RBCs with NO donor leads to Hb-NO formation which inhibits sGC activation in platelets. Similarly, RBCs inhibit activation of purified sGC, even under conditions optimal for RBC-mediated generation of NO from nitrite.
Conclusions
All our experiments demonstrate that RBCs act as strong NO scavengers and prevent NO-mediated inhibition of activated platelets. In all tested conditions, RBCs were not able to activate platelet or purified sGC.
Monoglyceride lipase (MGL) hydrolyzes monoacylglycerols (MG) to glycerol and one fatty acid. Among the various MG species, MGL also degrades 2-arachidonoylglycerol, the most abundant endocannabinoid and potent activator of the cannabinoid receptors 1 and 2. We investigated the consequences of MGL deficiency on platelet function using systemic (Mgl\(^{−/−}\)) and platelet-specific Mgl-deficient (platMgl\(^{−/−}\)) mice. Despite comparable platelet morphology, loss of MGL was associated with decreased platelet aggregation and reduced response to collagen activation. This was reflected by reduced thrombus formation in vitro, accompanied by a longer bleeding time and a higher blood volume loss. Occlusion time after FeCl\(_3\)-induced injury was markedly reduced in Mgl\(^{−/−}\) mice, which is consistent with contraction of large aggregates and fewer small aggregates in vitro. The absence of any functional changes in platelets from platMgl\(^{−/−}\) mice is in accordance with lipid degradation products or other molecules in the circulation, rather than platelet-specific effects, being responsible for the observed alterations in Mgl\(^{−/−}\) mice. We conclude that genetic deletion of MGL is associated with altered thrombogenesis.
Platelets are the second most abundant blood cells and their main function is maintenance of vascular integrity. In addition, platelets are increasingly recognized as cells with immune functions, as they participate in the recruitment of immune cells and modulate the progression and severity of an immune response. So-called lipid mediators, which are – besides other cells – released by activated platelets, influence the immune response. LTB4 is one of these potent lipid mediators and is able to activate neutrophils and induce their infiltration into injured tissue.
In order to investigate the involvement of platelets in inflammatory processes, a murine model of hepatic ischemia reperfusion injury as well as confocal intravital microscopy of the liver were established. Both methods were used to analyze the influence of platelets on the inflammation that follows sterile liver inflammation. We found platelet function to be unaltered after three hours of reperfusion and platelet aggregation to be irrelevant for the outcome of hepatic ischemia reperfusion injury. However, a strong impact of the GPIb-vWF axis could be observed, as antibody mediated blockade of GPIb as well as vWF-deficiency significantly reduced liver damage markers and decreased neutrophil infiltration. GPIb-IL-4R mice were used to exclude the possibility that the protective effects of the anti-GPIbα antibody treatment (p0p/B) results from something else than blocking GPIbα. Furthermore, the slope of neutrophil infiltration was decreased in p0p/B-treated mice, leading to overall decreased neutrophil numbers in the liver after three hours of reperfusion. Blockade of the integrin αIIbβ3, however, showed no reduction in neutrophil infiltration into the post-ischemic liver, in line with unaltered liver damage.
To study the role of leukotriene B4, conditional and constitutive knockout mice for the LTA4 hydrolase, which catalyzes the last step in LTB4 synthesis, were generated. Lta4h deficiency did not affect general platelet functionality in hemostasis and thrombosis. Interestingly,
Lta4h-/- mice were not protected from cellular damage following hepatic ischemia, despite lower neutrophil numbers in the post-ischemic liver.
Intravital microscopy of the pancreas was established and revealed increased CD4+ T cell numbers in GPVI-deficient animals compared to WT controls in line with the pre-diabetic phenotype of Gp6-/- mice that was revealed in Grzegorz Sumara’s group. Furthermore, platelet ‘behavior’ in pancreatic islets was observed following glucose injection. We found a high number of platelets adherent to islet sinusoids under basal conditions and no rolling/decelerating of platelets following glucose injection. This was accompanied by temporary sinusoidal constriction and stop of the blood flow. This phenomenon was not observed in control settings (injection of PBS, insulin or L-glucose).
In a side project, which was carried out jointly with Tobias Heib, a side by side comparison of the classical syringe-based flushing and the centrifugation-based spinning method to isolate murine bone marrow was conducted. Flow cytometry revealed no differences in the distribution of hematopoietic stem cells and immune cells and functional analysis with primary and cultured megakaryocytes (MKs) showed comparable results in all conducted assays. Thus, our data demonstrated that the faster and more efficient spinning method can be used for the isolation of bone marrow cells.
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.
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.
Diabetes ist assoziiert mit einer endothelialen Dysfunktion sowie einer vermehrten Aktivierung von Thrombozyten. Beides erhöht wahrscheinlich das Risiko eines kardiovaskulären Ereignisses. In der vorliegenden experimentellen Arbeit wurde untersucht, ob der Hydroxy-3-Methyl-Glutaryl (HMG)-CoA-Reduktase-Inhibitor Rosuvastatin zu einer Verbesserung der Endotheldysfunktion und einer Reduktion der Thrombozyten-Aktivierung im diabetischen Tiermodell beiträgt. Zu diesem Zweck wurde männlichen Wistar Ratten einmalig Beta-Zell-toxisches Streptozotocin injiziert und dadurch künstlich ein Diabetes mit persistierender Hyperglykämie erzeugt. Die Behandlung mit Rosuvastatin (20 mg/kg Körpergewicht täglich) beziehungsweise Placebo wurde zwei Wochen nach Induktion der Hyperglykämie begonnen und über zwei weitere Wochen fortgeführt. Die Gefäßfunktion wurde anschließend an isolierten Aortensegmenten im Organbad gemessen, die Bestimmung der Thrombozyten-Aktivierung erfolgte in frischem Vollblut. Die endothelabhängige Relaxation der Gefäße, induziert durch den rezeptorabhängigen Agonisten Acetylcholin, war in diabetischen Ratten signifikant vermindert und konnte durch die Rosuvastatin-Therapie verbessert werden. Dies ließ sich hauptsächlich auf eine deutlich reduzierte Sensitivität der Gefäßmuskulatur für Stickstoffmonoxid (NO) zurück führen, welche bei den diabetischen Tieren durch eine gesteigerte Superoxidbildung bedingt war. Rosuvastatin reduzierte signifikant die Bildung der Sauerstoffradikalen und verbesserte darüber hinaus die NO-Sensitivität. Weiterhin konnte durch die HMG-CoA-Reduktase-Inhibition die Bindung von Fibrinogen an aktiviertes GPIIb/IIIa, sowie die P-Selektin-Expression auf der Thrombozytenoberfläche als Marker der Thrombozyten-Degranulation reduziert werden, während diese beiden Marker der Thrombozyten-Aktivierung in der Placebo-behandelten diabetischen Versuchsgruppe erhöht waren. Aus diesen Ergebnissen lässt sich schlussfolgern, dass eine Behandlung mit dem HMG-CoA-Reduktase-Inhibitor Rosuvastatin bei diabetischen Ratten die Endotheldysfunktion der Gefäße verbessert und die Aktivierung von Thrombozyten durch eine verbesserte Verfügbarkeit des endogenen Thrombozyten-Inhibitors NO vermindert. Übertragen auf das menschliche Gefäßsystem könnte dieser Effekt zu einer Verminderung kardiovaskulärer Ereignisse durch eine Statin-Therapie bei Patienten mit Diabetes beitragen.
Platelet activation and aggregation at sites of vascular injury are essential processes to limit blood loss but they also contribute to arterial thrombosis, which can lead to myocardial infarction and stroke. Stable thrombus formation requires a series of events involving platelet receptors which contribute to adhesion, activation and aggregation of platelets. Regulation of receptor expression by (metallo-)proteinases has been described for several platelet receptors, but the molecular mechanisms are ill-defined. The signaling lymphocyte activation molecule (SLAM) family member CD84 is expressed in immune cells and platelets, however its role in platelet physiology was unclear. In this thesis, CD84 deficient mice were generated and analyzed. In well established in vitro and in vivo assays testing platelet function and thrombus formation, CD84 deficient mice displayed phenotypes indistinguishable from wild-type controls. It was concluded that CD84 in platelets does not function as modulator of thrombus formation, but rather has other functions. In line with this, in the second part of this thesis, a novel regulation mechanism for platelet CD84 was discovered and elucidated. Upon platelet activation, the N-terminus of CD84 was found to be cleaved exclusively by the a disintegrin and metalloproteinase 10 (ADAM10), whereas the intracellular part was cleaved by calpain. In addition, regulation of the platelet activating collagen receptor glycoprotein VI (GPVI) was studied and it was shown that GPVI is in contrast to CD84 differentially regulated by ADAM10 and ADAM17. A novel role of CD84 under pathophysiological conditions was revealed as CD84 deficient mice were protected from ischemic stroke in the model of transient middle cerebral artery occlusion and this protection was based on the lack of CD84 in T cells. Ca2+ is an essential second messenger that facilitates activation of platelets and diverse functions in different eukaryotic cell types. Store-operated Ca2+ entry (SOCE) represents the major mechanism leading to rise in intracellular Ca2+ concentration in non-excitable cells. The Ca2+ sensor STIM1 (stromal interaction molecule 1) and the SOC channel subunit protein Orai1 are established mediators of SOCE in platelets. STIM2 is the major STIM isoform in neurons, but the role of the SOC channel subunit protein Orai2 in platelets and neurons has remained elusive. In the third part of this thesis, Orai2 deficient mice were generated and analyzed. Orai2 was dispensable for platelet function, however, Orai2 deficient mice were protected from ischemic neurodegeneration and this phenotype was attributed to defective SOCE in neurons.
Background
Platelets are anuclear cell fragments derived from bone marrow megakaryocytes that safeguard vascular integrity by forming thrombi at sites of vascular injury. Although the early events of thrombus formation—platelet adhesion and aggregation—have been intensively studied, less is known about the mechanisms and receptors that stabilize platelet-platelet interactions once a thrombus has formed. One receptor that has been implicated in this process is the signaling lymphocyte activation molecule (SLAM) family member CD84, which can undergo homophilic interactions and becomes phosphorylated upon platelet aggregation.
Objective
The role of CD84 in platelet physiology and thrombus formation was investigated in CD84-deficient mice.
Methods and Results
We generated CD84-deficient mice and analyzed their platelets in vitro and in vivo. \(Cd84^{−/−}\) platelets exhibited normal activation and aggregation responses to classical platelet agonists. Furthermore, CD84 deficiency did not affect integrin-mediated clot retraction and spreading of activated platelets on fibrinogen. Notably, also the formation of stable three-dimensional thrombi on collagen-coated surfaces under flow ex vivo was unaltered in the blood of \(Cd84^{−/−}\) mice. In vivo, \(Cd84^{−/−}\) mice exhibited unaltered hemostatic function and arterial thrombus
formation.
Conclusion
These results show that CD84 is dispensable for thrombus formation and stabilization, indicating that its deficiency may be functionally compensated by other receptors or that it may be important for platelet functions different from platelet-platelet interactions.
Prostanoide wirken über Prostanoid-Rezeptoren auf die Aktivierung oder Hemmung der Thrombozyten. In dieser Arbeit wurde die Existenz und Funktionsweise der Prostanoid-Rezeptoren anhand synthetischer Agonisten und Antagonisten in humanen Thrombozyten nachgewiesen. Weiter wurde untersucht, über welche Prostanoid-Rezeptoren die Signaltransduktion der natürlichen Agonisten wie PGE2, PGE1 und PGA1 vermittelt wird, sowie das Zusammenspiel der Prostanoid-Rezeptoren auf die Aktivierung oder Hemmung der Thrombozyten gezeigt. Das Vorhandensein der Prostaglandin E2 Synthase 3 wurde nachgewiesen sowie erste Anhaltspunkte für die Existenz eines Komplexes aus Prostaglandin E2 Synthase 3, Hitzeschockprotein-90 sowie Casein Kinase 2 gezeigt.
Background
Washing of platelets is an important procedure commonly used for experimental studies, e.g. in cardiovascular research. As a known phenomenon, responsiveness to adenosine diphosphate (ADP) is reduced in washed platelets, although underlying molecular mechanisms—potentially interfering with experimental results—have not been thoroughly studied.
Objectives
Since ADP mediates its effects via three purinergic receptors P2Y1, P2X1 and P2Y12, their surface expression and function were investigated in washed platelets and, for comparison, in platelet-rich-plasma (PRP) at different time points for up to 2 hours after preparation.
Results
In contrast to PRP, flow cytometric analysis of surface expression in washed platelets revealed an increase of all receptors during the first 60 minutes after preparation followed by a significant reduction, which points to an initial preactivation of platelets and consecutive degeneration. The activity of the P2X1 receptor (measured by selectively induced calcium flux) was substantially maintained in both PRP and washed platelets. P2Y12 function (determined by flow cytometry as platelet reactivity index) was partially reduced after platelet washing compared to PRP, but remained stable in course of ongoing storage. However, the function of the P2Y1 receptor (measured by selectively induced calcium flux) continuously declined after preparation of washed platelets.
Conclusion
In conclusion, decreasing ADP responsiveness in washed platelets is particularly caused by impaired activity of the P2Y1 receptor associated with disturbed calcium regulation, which has to be considered in the design of experimental studies addressing ADP mediated platelet function.
Background:
Platelets are important for effective hemostasis and considered to be involved in pathophysiological processes, e.g. in cardiovascular diseases. Platelets provided for research or for therapeutic use are frequently separated from citrated whole blood (WB) stored for different periods of time. Although functionally intact platelets are required, the stability of platelet integrity, e.g. adenosine diphosphate (ADP) mediated responsiveness, has never been thoroughly investigated in citrated WB under ex vivo conditions.
Objectives:
Platelet integrity was evaluated at different time points in citrated WB units, collected from healthy donors and stored for 5 days at ambient temperature. The analysis included the measurement of activation markers, of induced light transmission aggregometry and of purinergic receptor expression or function. Inhibitory pathways were explored by determination of basal vasodilator-stimulated phosphoprotein (VASP)-phosphorylation, intracellular cyclic nucleotide levels and the content of phosphodiesterase 5A. Fresh peripheral blood (PB) samples served as controls.
Results:
On day 5 of storage, thrombin receptor activating peptide-6 (TRAP-6) stimulated CD62P expression and fibrinogen binding were comparable to PB samples. ADP induced aggregation continuously decreased during storage. Purinergic receptor expression remained unchanged, whereas the P2Y1 activity progressively declined in contrast to preserved P2Y12 and P2X1 function. Inhibitory pathways were unaffected except for a slight elevation of VASP phosphorylation at Ser\(^{239}\) on day 5.
Conclusion:
After 5 days of storage in citrated WB, platelet responsiveness to TRAP-6 is sufficiently maintained. However, ADP-mediated platelet integrity is more sensitive to deterioration, especially after storage for more than 2 days. Decreasing ADP-induced aggregation is particularly caused by the impairment of the purinergic receptor P2Y1 activity. These characteristics should be considered in the use of platelets from stored citrated WB for experimental or therapeutic issues.
The present antithrombotic drugs used to treat or prevent ischemic stroke have significant limitations: either they show only moderate efficacy (platelet inhibitors), or they significantly increase the risk for hemorrhages (thrombolytics, anticoagulants). Although most strokes are caused by thrombotic or embolic vessel occlusions, the pathophysiological role of platelets and coagulation is largely unclear. The introduction of novel transgenic mouse models and specific coagulation inhibitors facilitated a detailed analysis of molecular pathways mediating thrombus formation in models of acute ischemic stroke. Prevention of early platelet adhesion to the damaged vessel wall by blocking platelet surface receptors glycoprotein Ib alpha (GPIbα) or glycoprotein VI (GPVI) protects from stroke without provoking bleeding complications. In addition, downstream signaling of GPIbα and GPVI has a key role in platelet calcium homeostasis and activation. Finally, the intrinsic coagulation cascade, activated by coagulation factor XII (FXII), has only recently been identified as another important mediator of thrombosis in cerebrovascular disease, thereby disproving established concepts. This review summarizes the latest insights into the pathophysiology of thrombus formation in the ischemic brain. Potential clinical merits of novel platelet inhibitors and anticoagulants as powerful and safe tools to combat ischemic stroke are discussed.
Background and Purpose
In animal models, von Willebrand factor (VWF) is involved in thrombus formation and propagation of ischemic stroke. However, the pathophysiological relevance of this molecule in humans, and its potential use as a biomarker for the risk and severity of ischemic stroke remains unclear. This study had two aims: to identify predictors of altered VWF levels and to examine whether VWF levels differ between acute cerebrovascular events and chronic cerebrovascular disease (CCD).
Methods
A case–control study was undertaken between 2010 and 2013 at our University clinic. In total, 116 patients with acute ischemic stroke (AIS) or transitory ischemic attack (TIA), 117 patients with CCD, and 104 healthy volunteers (HV) were included. Blood was taken at days 0, 1, and 3 in patients with AIS or TIA, and once in CCD patients and HV. VWF serum levels were measured and correlated with demographic and clinical parameters by multivariate linear regression and ANOVA.
Results
Patients with CCD (158±46%) had significantly higher VWF levels than HV (113±36%, P<0.001), but lower levels than AIS/TIA patients (200±95%, P<0.001). Age, sex, and stroke severity influenced VWF levels (P<0.05).
Conclusions
VWF levels differed across disease subtypes and patient characteristics. Our study confirms increased VWF levels as a risk factor for cerebrovascular disease and, moreover, suggests that it may represent a potential biomarker for stroke severity, warranting further investigation.
Die Analyse des Phosphoproteoms in ruhenden und in aktivierten humanen Plättchen führte zur Identifikation des PITPnm2-Proteins. Dieses Protein wird bei einer Stimulation von Thrombozyten mit dem Prostazyklinanalogon Iloprost phosphoryliert. Diese Ergebnisse gaben Anlass zu weiteren Untersuchungen zum Vorkommen und zur Funktion dieses Proteins in Thrombozyten. In der Arbeit wurde gezeigt, dass das PITPnm2-Protein das einzige Protein der PITP-Familie ist, welches in humanen Thrombozyten exprimiert wird. Die membranassoziierten Phosphatidylinositol-Transfer-Proteine PITPnm1 und PITPnm3 sind auf cDNA-Ebene nicht in Thrombozyten nachweisbar. Von den drei zur Zeit der Untersuchung bekannten Splicevarianten des PITPnm2-Proteins konnten zwei Varianten in Thrombozyten mittels RT-PCR identifiziert werden. Diese zwei Varianten unterscheiden sich durch ein unterschiedlich exprimiertes Exon, welches im zentralen Teil des Proteins liegt. Ein weiteres Spliceprodukt, dem die Aminosäuren 50 bis 328 im vorderen Teil des Proteins fehlen, wird nicht in Thrombozyten exprimiert. PITPNM2 (Splicevariante 1) wurde als Fusionsprotein mit einem sogenannten „Flag-Tag“ kloniert und in Eukaryonten exprimiert (pCMV-SC-CF, Stratagene). Mit dem rekombinanten Fusionsprotein wurden gegen PITPnm2 gerichtete Antikörper getestet. Der Vergleich mit Flag-Tag-spezifischen Antikörpern zeigte, dass der PITPnm2-spezifische Antikörper zahlreiche Banden detektiert und für weitere Untersuchungen nicht geeignet ist. Dieser PITPnm2-Klon wird auch in weiterführenden Arbeiten eingesetzt werden, die sich mit der Identifizierung der Interaktionspartner dieses Proteins, der subzellulären Lokalisierung und der Teilnahme des Proteins an spezifischen Zell-Signalwegen beschäftigen werden.
Die Rolle des Proteins VASP für die Proliferation und Differenzierung hämatopoetischer Stammzellen
(2005)
Im Rahmen der Arbeit wurden in mehreren Teilprojekten die Eigenschaften und Funktionen des Vasodilatator stimulierenden Phosphoproteins (VASP) untersucht. Es wurde ein neuer Antikörper (5C6) charakterisiert, der für an Serin157 phosphoryliertes VASP spezifisch sein sollte. Es konnte gezeigt werden, dass der 5C6 Antikörper spezifisch VASP erkennt, welches an der Stelle Serin157 phosphoryliert ist. Auch konnten mit dem neuen Antikörper Ergebnisse bestätigt werden, die vorher mit anderen Methoden erhoben wurden, nämlich, dass Serin157 sowohl cAMP- als auch cGMP-vermittelt phosphoryliert wird. Der Antikörper 5C6 stellte sich als ein guter Marker für die Phosphorylierung von VASP an Serin157 durch die PKA dar und ermöglichte, die Zeitkinetik der VASP-Phosphorylierung zu beschreiben. In einem weiteren Projekt wurde die Rolle des Proteins VASP bei der Proliferation und Differenzierung von Knochenmark-Stammzellen zu Megakaryozyten und Thrombozyten untersucht. Die Stammzellen wurden zusätzlich zu Wachstumsfaktoren mit unterschiedlichen Dosen eines cGMP-Analogons stimuliert. Es zeigte sich hierbei, dass 8-pCPT-cGMP einen dualen, konzentrationsabhängigen Effekt auf die Proliferation und die Differenzierung hämatopoetischer Stammzellen von Wildtypmäusen hat. Niedrige Dosen hemmten die Proliferation und förderten die Differenzierung, dagegen hatten höhere Konzentrationen einen proliferationsfördernden und differenzierungshemmenden Effekt auf die Stammzellen. Im Vergleich hierzu ergab eine Stimulation mit 8-pCPT-cGMP bei VASP knock out Mäusen immer einen proliferationsfördernden Effekt, hingegen einen hemmenden Effekt auf die Differenzierung der hämatopoetischen Stammzellen. Bei den knock out Zellen führten höhere Konzentrationen lediglich zu einer stärkeren Reaktion als niedrige.