21 research outputs found

    Proteomics : A Tool to Study Platelet Function

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    Acknowledgments: Authors acknowledge Laxmikanth Kollipara for the critical review and Julia Lill for support with figures preparation. The Figure 2 was created in Biorender.Peer reviewedPublisher PD

    Isolation of F. novicida-Containing Phagosome from Infected Human Monocyte Derived Macrophages

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    Francisella is a gram-negative bacterial pathogen, which causes tularemia in humans and animals. A crucial step of Francisella infection is its invasion of macrophage cells. Biogenesis of the Francisella-containing phagosome (FCP) is arrested for ∌15min at the endosomal stage, followed by gradual bacterial escape into the cytosol, where the microbe proliferates. The crucial step in pathogenesis of tularemia is short and transient presence of the bacterium within phagosome. Isolation of FCPs for further studies has been challenging due to the short period of time of bacterial residence in it and the characteristics of the FCP. Here, we will for the first time present the method for isolation of the FCPs from infected human monocytes-derived macrophages (hMDMs). For elimination of lysosomal compartment these organelles were pre-loaded with dextran coated colloidal iron particles prior infection and eliminated by magnetic separation of the post-nuclear supernatant (PNS). We encountered the challenge that mitochondria has similar density to the FCP. To separate the FCP in the PNS from mitochondria, we utilized iodophenylnitrophenyltetrazolium, which is converted by the mitochondrial succinate dehydrogenase into formazan, leading to increased density of the mitochondria and allowing separation by the discontinuous sucrose density gradient ultracentrifugation. The purity of the FCP preparation and its acquisition of early endosomal markers was confirmed by Western blots, confocal and transmission electron microscopy. Our strategy to isolate highly pure FCPs from macrophages should facilitate studies on the FCP and its biogenesis.1

    NO/cGMP und ROS Singnalwege in Regulation der PlÀttchen Funktion und Megakaryozyten Entwicklung

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    BlutplĂ€ttchen spielen unter physiologischen Bedingungen eine wichtige Rolle bei der Erhaltung der HĂ€mostase. So verhindern sie ein andauerndes Bluten von Wunden, indem sie in BlutgefĂ€ssen zwischen normalen Zellen des Endothels und beschĂ€digten Bereichen unterscheiden und sich dort gezielt anheften können. Das Zusammenspiel der PlĂ€ttchenagonisten und den dazugehörigen Rezeptoren wird durch intrazellulĂ€re SignalmolekĂŒle kontrolliert, die die Aktivierung der BlutplĂ€ttchen regulieren. Äusserst wichtige intrazellulare SignalmolekĂŒle stellen dabei die zyklischen Nukleotide cGMP und cAMP dar, die bei der Hemmung der PlĂ€ttchen beteiligt sind. Die Bildung von cGMP und cAMP in den BlutplĂ€ttchen wird durch die aus dem Endothel freigesetzten MolekĂŒle NO und Prostacyclin (PGI2) stimuliert, die ihrerseits BlutplĂ€ttchen hemmen, indem sie Proteinkinase G (PKG) und Proteinkinase A (PKA) aktivieren. Neuerdings wird vorgeschlagen, dass es sich bei ROS („reactive oxygen species“) um einen neuen Modulator bei der Signaltransduktion zwischen verschiedenen Zelltypen handelt. Die hier zusammengefasste Arbeit beschreibt die Rolle der ROS-Produktion bei der Aktivierung von BlutplĂ€ttchen, die Beziehung zwischen dem NO/cGMP/PKG I Signalweg und der ROS bzw. MAP-Kinase Signaltransduktion, und die Rolle von zyklischen Nukleotiden bei der Entwicklung von Megakaryozyten und BlutplĂ€ttchen. Werden BlutplĂ€ttchen durch unterschiedliche EinflĂŒsse aktiviert, so produzieren sie ĂŒber die Aktivierung von NAD(P)H-Oxidase nur intrazellulĂ€res aber nicht extrazellulĂ€res ROS. Dabei beinflusst das in den BlutplĂ€ttchen produzierte ROS signifikant die Aktivierung von αIIbβ3 Integrin, nicht jedoch die Sekretion von alpha- bzw. dichten Granula oder die Gestalt der BlutplĂ€ttchen. Die Thrombin-induzierte Integrin αIIbβ3-Aktivierung ist nach Behandlung der BlutplĂ€ttchen mit Hemmstoffen der NAD(P)H-Oxidase oder Superoxid-FĂ€ngern signifikant reduziert. Diese Inhibitoren reduzieren auch die Aggregation der BlutplĂ€ttchen bzw. die Thrombusbildung auf Kollagen, wobei diese Effekte unabhĂ€ngig vom NO/cGMP Signalweg vermittelt werden. Sowohl ADP, das von dichten Granula der BlutplĂ€ttchen sezerniert wird und zur Aktivierung von P2Y12-Rezeptoren fĂŒhrt, als auch die Freigabe von Thromboxan A2 stellen wichtige, vorgeschaltete Vermittler bei der p38 MAP Kinase-Aktivierung durch Thrombin dar. Jedoch spielt die p38 MAP-Kinase-Aktivierung keine signifikante Rolle bei der Thrombin-induzierten Kalzium-Mobilisierung, P-Selektin Exprimierung, αIIbβ3 Integrin Aktivierung oder Aggregation der BlutplĂ€ttchen. Abschliessend kann festgestellt werden, dass sich die Aktivierung der PKG insgesamt klar hemmend auf die p38 and ERK MAP-Kinasen in menschlichen BlutplĂ€ttchen auswirkt. Desweiteren zeigt diese Studie, dass zyklische Nukleotide nicht nur die BlutplĂ€ttchen hemmen, sondern auch einen Einfluss auf die Entwicklung der Megakaryozyten und BlutplĂ€ttchen haben, aber auf unterschiedliche Weise. cAMP ist an der Differenzierung von embryonalen hĂ€matopoietischen Zellen zu Megakaryozyten beteiligt, wobei cGMP keine Rolle bei diesem Prozess spielt. WĂ€hrend PKA in embryonalen Zellen schon vertreten ist, steigt beim Reifungsprozess der Megakaryozyten die Expression von Proteinen, die bei der cGMP Signalverbreitung („soluble guanylyl cyclase“, sGC; PKG) mitwirken, stetig an. In der letzten Phase der Reifung von Megakaryozyten, die durch die Freisetzung der BlutplĂ€ttchen charakterisiert ist, zeigen cGMP und cAMP leicht divergierende Effekte: cGMP verstĂ€rkt die Bildung von BlutplĂ€ttchen, wĂ€hrend cAMP dieselbe reduziert. Dies deutet auf einen fein abgestimmten Prozess hin, abhĂ€ngig von einem Stimulus, der von den benachbarten Zellen des Sinusoid-Endothels stammen könnte. Die Ergebnisse dieser Dissertation tragen zu einen besseren VerstĂ€ndnis der Regulation von BlutplĂ€ttchen sowie der möglichen molekularen Mechanismen bei, die eine Rolle bei der Reifung von Megakaryozyten im vaskularen Mikroumfeld des Knochenmarks innehaben.In physiological conditions platelets have a major role in maintaining haemostasis. Platelets prevent bleeding from wounds by distinguishing normal endothelial cells in vasculature from areas with lesions to which they adhere. Interaction of platelet agonists and their receptors is controlled by intracellular signaling molecules that regulate the activation state of platelets. Very important intracellular signaling molecules are cyclic nucleotides (cGMP and cAMP), both involved in inhibition of platelet activation. Formation of cGMP and cAMP in platelets is stimulated by endothelial-derived NO and prostacyclin (PGI2), which then mediate inhibition of platelets by activating protein kinase G (PKG) and protein kinase A (PKA). Recently, it has been suggested that reactive oxygen species (ROS) represent new modulators of cell signaling within different cell types. The work summarized here describes the involvement of platelet ROS production in platelet activation, the relation of NO/cGMP/PKG I pathway to ROS and to mitogen-activated protein kinases (MAP kinase) signaling, and the involvement of cyclic nucleotides in megakaryocyte and platelet development. Platelets activated with different agonists produce intracellular but not extracellular ROS by activation of NAD(P)H oxidase. In addition, ROS produced in platelets significantly affects αIIbβ3 integrin activation but not alpha/dense granule secretion and platelet shape change. Thrombin induced integrin αIIbβ3 activation is significantly decreased after pretreatment of platelets with NAD(P)H oxidase inhibitors and superoxide scavengers. These inhibitors also reduce platelet aggregation and thrombus formation on collagen under high shear and achieve their effects independently of the NO/cGMP pathway. ADP secreted from platelet dense granules with subsequent activation of P2Y12 receptors as well as thromboxane A2 release are found to be important upstream mediators of p38 MAP kinase activation by thrombin. However, p38 MAP kinase activation does not significantly contribute to calcium mobilization, P-selectin expression, αIIbβ3 integrin activation and aggregation of human platelets in response to thrombin. Finally, PKG activation does not stimulate, but rather inhibit, p38 and ERK MAP kinases in human platelets. Further study revealed that cyclic nucleotides not only inhibit platelet activation, but are also involved, albeit differentially, in megakaryocyte and platelet development. cAMP is engaged in haematopoietic stem cell differentiation to megakaryocytes, and cGMP has no impact on this process. While PKA is already present in stem cells, expression of proteins involved in cGMP signaling (soluble guanylyl cyclase, sGC; PKG) increases with maturation of megakaryocytes. In the final step of megakaryocyte maturation that includes release of platelets, cGMP and cAMP have mild but opposing effects: cGMP increases platelet production while cAMP decreases it indicating a finely regulated process that could depend on stimulus coming from adjacent endothelial cells of sinusoids in bone marrow. The results of this thesis contribute to a better understanding of platelet regulation and of the possible molecular mechanisms involved in megakaryocyte maturation in bone marrow vascular microenvironment

    Imaging of Intracellular and Plasma Membrane Pools of PI(4,5)P<sub>2</sub> and PI4P in Human Platelets

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    Phosphoinositides (PIs) are phosphorylated membrane lipids that have a plethora of roles in the cell, including vesicle trafficking, signaling, and actin reorganization. The most abundant PIs in the cell are phosphatidylinositol-4,5-bisphosphate [PI(4,5)P2] and phosphatidylinositol-4-monophosphate (PI4P). The localization and roles of both PI(4,5)P2 and PI4P are well established, is the broadly accepted methodological approach for their immunocytochemical visualization in different cell compartments in several cell lines. However, not much is known about these PIs in platelets (PLTs), the smallest blood cells that detect vessel wall injury, activate, and stop the bleeding. Therefore, we sought to investigate the localization of PI(4,5)P2 and PI4P in resting and activated PLTs by antibody staining. Here, we show that the intracellular pools of PI(4,5)P2 and PI4P can be detected by the established staining protocol, and these pools can be modulated by inhibitors of OCRL phosphatase and PI4KIIIα kinase. However, although resting PLTs readily stain for the plasma membrane (PM) pools of PI(4,5)P2 and PI4P, just a few activated cells were stained with the established protocol. We show that optimized protocol allows for the visualization of PI(4,5)P2 and PI4P at PM in activated PLTs, which could also be modulated by OCRL and PI4KIIIα inhibitors. We conclude that PI(4,5)P2 and PI4P are more sensitive to lipid extraction by permeabilizing agents in activated than in resting human PLTs, which suggests their different roles during PLT activation

    Developmental differences of in vitro cultured murine bone marrow- and fetal liver-derived megakaryocytes

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    Multiple lines of evidence support differences in the megakaryopoiesis during development. Murine in vitro models to study megakaryopoiesis employ cultured megakaryocytes MKs derived from adult bone marrow (BM) or fetal livers (FL) of mouse embryos. Mouse models allow to study the molecular basis for cellular changes utilizing conditional or knock-out models and permit further in vitro genetic or pharmacological manipulations. Despite being extensively used, MKs cultured from these two sources have not been systematically compared. In the present study, we compared BM- and FL-derived MKs, assessing their size, proplatelet production capacity, expression of common MK markers (αIIb, ÎČ3, GPIb α, ÎČ) and cytoskeletal proteins (filamin A, ÎČ1-tubulin, actin), the subcellular appearance of α-granules (VWF), membranes (GPIbÎČ) and cytoskeleton (F-actin) throughout in vitro development. We demonstrate that FL MKs although smaller in size, spontaneously produce more proplatelets than BM MKs and at earlier stages express more ÎČ1-tubulin. In addition, early FL MKs show increased internal GPIbÎČ staining and present higher GPIbÎČ (early and late) and VWF (late stages) total fluorescence intensity (TFI)/cell size than BM MKs. BM MKs have up-regulated TPO signaling corresponding to their bigger size and ploidy, without changes in c-Mpl. Expressing endogenous ÎČ1-tubulin or the presence of heparin improves BM MKs ability to produce proplatelets. These data suggest that FL MKs undergo cytoplasmic maturation earlier than BM MKs and that this, in addition to higher ÎČ1-tubulin levels and GPIb, supported with an extensive F-actin network, could contribute to more efficient proplatelet formation in vitro

    Early Endosomal Vps34-Derived Phosphatidylinositol-3-Phosphate Is Indispensable for the Biogenesis of the Endosomal Recycling Compartment

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    Phosphatidylinositol-3-phosphate (PI3P), a major identity tag of early endosomes (EEs), provides a platform for the recruitment of numerous cellular proteins containing an FYVE or PX domain that is required for PI3P-dependent maturation of EEs. Most of the PI3P in EEs is generated by the activity of Vps34, a catalytic component of class III phosphatidylinositol-3-phosphate kinase (PI3Ks) complex. In this study, we analyzed the role of Vps34-derived PI3P in the EE recycling circuit of unperturbed cells using VPS34-IN1 (IN1), a highly specific inhibitor of Vps34. IN1-mediated PI3P depletion resulted in the rapid dissociation of recombinant FYVE- and PX-containing PI3P-binding modules and endogenous PI3P-binding proteins, including EEA1 and EE sorting nexins. IN1 treatment triggered the rapid restructuring of EEs into a PI3P-independent functional configuration, and after IN1 washout, EEs were rapidly restored to a PI3P-dependent functional configuration. Analysis of the PI3P-independent configuration showed that the Vps34-derived PI3P is not essential for the pre-EE-associated functions and the fast recycling loop of the EE recycling circuit but contributes to EE maturation toward the degradation circuit, as previously shown in Vps34 knockout and knockdown studies. However, our study shows that Vps34-derived PI3P is also essential for the establishment of the Rab11a-dependent pathway, including recycling cargo sorting in this pathway and membrane flux from EEs to the pericentriolar endosomal recycling compartment (ERC). Rab11a endosomes of PI3P-depleted cells expanded and vacuolized outside the pericentriolar area without the acquisition of internalized transferrin (Tf). These endosomes had high levels of FIP5 and low levels of FIP3, suggesting that their maturation was arrested before the acquisition of FIP3. Consequently, Tf-loaded-, Rab11a/FIP5-, and Rab8a-positive endosomes disappeared from the pericentriolar area, implying that PI3P-associated functions are essential for ERC biogenesis. ERC loss was rapidly reversed after IN1 washout, which coincided with the restoration of FIP3 recruitment to Rab11a-positive endosomes and their dynein-dependent migration to the cell center. Thus, our study shows that Vps34-derived PI3P is indispensable in the recycling circuit to maintain the slow recycling pathway and biogenesis of the ERC

    Endosomal Phosphatidylinositol-3-phosphate is Essential for the Final Assembly of CMV Virions

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    Cytomegaloviruses (CMVs) initiate the stepwise establishment of their cytoplasmic virion assembly compartment (cVAC) at the earliest stages of infection by expanding the interface between early endosomes (EEs) and endosomal recycling compartment (ERC) and relocating the Golgi complex. This membranous organelle reorganization involves phosphatidylinositol-3-phosphate (PI(3)P)-containing membrane domains, as PI(3)P is the master regulator of the EE pathway. Our goal was to investigate the contribution of PI(3)P-dependent EE domains to cVAC biogenesis and their role in the consequent progression of the CMV life cycle. Our functional analysis of PI(3)P was based on rapid depletion of PI(3)P production at EE membranes using VPS34-IN1, a specific and reversible inhibitor of Vps34 component of class III PI(3)P kinase, and on saturation of PI(3)P by overexpression of recombinant PI(3)P-binding domains (2xFYVE, p40PX). PI(3)P depletion led to rapid reorganization of the Rab11a-dependent pathway of the ERC, and abolished recycling cargo sorting in this pathway as well as membrane flux from EE to the ERC. Despite these alterations and although PI(3)P+ and Vps34+ endosomes build a substantial part of cVAC, the PI(3)P inhibition did not prevent the establishment of infection, rogression through the early phase of infection, and membrane reorganization associated with cVAC development, as analyzed by confocal imaging and Western blot analysis. However, the drastically reduced viral growth under PI(3)P depletion and the significant inhibition of late infection events (DNA replication, late protein expression) together with the reduced release of infectious virions suggest that PI(3)P is essential for entry into the late phase of infection and the final formation of progeny virions
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