Institut für Immunologie u. Transfusionsmedizin - Abteilung Immunologie
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Abstract
Background
Heparin induced thrombocytopenia (HIT) is likely a misdirected bacterial host defense mechanism. Platelet factor 4 (PF4) binds to polyanions on bacterial surfaces exposing neo‐epitopes to which HIT antibodies bind. Platelets are activated by the resulting immune complexes via FcγRIIA, release bactericidal substances, and kill Gram‐negative Escherichia coli.
Objectives
To assess the role of PF4, anti‐PF4/H antibodies and FcγRIIa in killing of Gram‐positive bacteria by platelets.
Methods
Binding of PF4 to protein‐A deficient Staphylococcus aureus (SA113Δspa) and non‐encapsulated Streptococcus pneumoniae (D39Δcps) and its conformational change were assessed by flow cytometry using monoclonal (KKO,5B9) and patient derived anti‐PF4/H antibodies. Killing of bacteria was quantified by counting colony forming units (cfu) after incubation with platelets or platelet releasate. Using flow cytometry, platelet activation (CD62P‐expression, PAC‐1 binding) and phosphatidylserine (PS)‐exposure were analyzed.
Results
Monoclonal and patient‐derived anti‐PF4/H antibodies bound in the presence of PF4 to both S. aureus and S. pneumoniae (1.6‐fold increased fluorescence signal for human anti‐PF4/H antibodies to 24.0‐fold increase for KKO). Staphylococcus aureus (5.5 × 104cfu/mL) was efficiently killed by platelets (2.7 × 104cfu/mL) or their releasate (2.9 × 104cfu/mL). Killing was not further enhanced by PF4 or anti‐PF4/H antibodies. Blocking FcγRIIa had no impact on killing of S. aureus by platelets. In contrast, S. pneumoniae was not killed by platelets or releasate. Instead, after incubation with pneumococci platelets were unresponsive to TRAP‐6 stimulation and exposed high levels of PS.
Conclusions
Anti‐PF4/H antibodies seem to have only a minor role for direct killing of Gram‐positive bacteria by platelets. Staphylococcus aureus is killed by platelets or platelet releasate. In contrast, S. pneumoniae affects platelet viability.
Abstract
Background
Heparins are usually produced from animal tissues. It is now possible to synthesize heparins. This provides the abilities to overcome shortages of heparin, to optimize biological effects, and to reduce adverse drug effects. Heparins interact with platelet factor 4 (PF4), which can induce an immune response causing thrombocytopenia. This side effect is called heparin‐induced thrombocytopenia (HIT). We characterized the interaction of PF4 and HIT antibodies with oligosaccharides of 6‐, 8‐, 10‐, and 12‐mer size and a hypersulfated 12‐mer (S12‐mer).
Methods
We utilized multiple methodologies including isothermal calorimetry, circular dichroism spectroscopy, single molecule force spectroscopy (SMFS), enzyme immunosorbent assay (EIA), and platelet aggregation test to characterize the interaction of synthetic heparin analogs with PF4 and anti‐PF4/heparin antibodies.
Results
The synthetic heparin‐like compounds display stronger binding characteristics to PF4 than animal‐derived heparins of corresponding lengths. Upon complexation with PF4, 6‐mer and S12‐mer heparins showed much lower enthalpy, induced less conformational changes in PF4, and interacted with weaker forces than 8‐, 10‐, and 12‐mer heparins. Anti‐PF4/heparin antibodies bind more weakly to complexes formed between PF4 and heparins ≤ 8‐mer than with complexes formed between PF4 and heparins ≥ 10‐mer. Addition of one sulfate group to the 12‐mer resulted in a S12‐mer, which showed substantial changes in its binding characteristics to PF4.
Conclusions
We provide a template for characterizing interactions of newly developed heparin‐based anticoagulant drugs with proteins, especially PF4 and the resulting potential antigenicity.
Staphylococcus aureus (S. aureus) can secrete a broad range of virulence factors, among which staphylococcal serine protease-like proteins (Spls) have been identified as bacterial allergens. The S. aureus allergen serine protease-like protein D (SplD) induces allergic asthma in C57BL/6J mice through the IL-33/ST2 signaling axis. Analysis of C57BL/6J, C57BL/6N, CBA, DBA/2, and BALB/c mice treated with intratracheal applications of SplD allowed us to identify a frameshift mutation in the serine (or cysteine) peptidase inhibitor, clade A, and member 3I (Serpina3i) causing a truncated form of SERPINA3I in BALB/c, CBA, and DBA/2 mice. IL-33 is a key mediator of SplD-induced immunity and can be processed by proteases leading to its activation or degradation. Full-length SERPINA3I inhibits IL-33 degradation in vivo in the lungs of SplD-treated BALB/c mice and in vitro by direct inhibition of mMCP-4. Collectively, our results establish SERPINA3I as a regulator of IL-33 in the lungs following exposure to the bacterial allergen SplD, and that the asthma phenotypes of mouse strains may be strongly influenced by the observed frameshift mutation in Serpina3i. The analysis of this protease-serpin interaction network might help to identify predictive biomarkers for type-2 biased airway disease in individuals colonized by S. aureus.
Neue Antibiotika und Präventionsmaßnahmen gegen S. aureus sind aufgrund der starken Ausbreitung multiresistenter S. aureus-Stämme dringend erforderlich. Zur Entwicklung von Therapie- und Präventionsmaßnahmen werden geeignete Infektionsmodellen benötigt, die die klinische Situation möglichst exakt widerspiegeln. Da die Spezies S. aureus stark wirtsspezifisch ist, könnten wirtsadaptierte S. aureus-Stämme hierbei äußerst hilfreich sein. In der Infektionsforschung werden vor allem Mausmodelle verwendet. Da bisher jedoch angenommen wurde, dass Mäuse keine natürlichen Wirte von S. aureus sind, sind S. aureus-Forscher davon ausgegangen, dass Mäuse kein geeignetes Modell darstellen. Das wurde durch unsere und andere Arbeitsgruppen allerdings in den letzten Jahren widerlegt. Wir konnten zeigen, dass Labor- und Wildmäuse mit S. aureus besiedelt sind.
Im Rahmen dieser Arbeit sollte geklärt werden, ob murine Infektionsmodelle durch die Verwendung von mausadaptierten S. aureus-Stämmen optimiert werden können. Aus über 250 S. aureus-Stämmen, die aus Labor und Wildmäusen isoliert wurden, wurden vier mausadaptierte S. aureus-Isolate ausgewählt und mit dem humanen S. aureus-Isolat Newman in einem Pneumonie- und Bakteriämiemodell vergleichen. Diese Stämme wiesen einen repräsentativen spa-Typ sowie typischen Phagenmuster und Virulenzgene auf. Zudem waren sie in der Lage, murines Plasma zu koagulieren und in murinem Vollblut zu replizieren.
Es zeigte sich, dass das murine Isolat S. aureus DIP sowohl im Pneumonie- als auch im Bakteriämiemodell deutlich virulenter war als das humane Isolat Newman und die anderen getesteten mausadaptierten Stämme. Nach kürzester Zeit starben alle Tiere, die mit S. aureus DIP infiziert wurden. Wurde die Infektionsdosis im Vergleich zu Newman um 90 % reduziert, waren die bakterielle Last, der Belastungsscore, sowie die Zytokin- und Chemokinkonzentrationen nach Infektion mit S. aureus DIP bzw. S. aureus Newman vergleichbar. Im Besiedlungsmodell konnte gezeigt werden, dass die mausadaptierten Stämme S. aureus JSNZ sowie S. aureus DIP in der Lage sind, Mäuse über einen Zeitraum von 7 Tagen stabil zu besiedeln. Mäuse, die mit S. aureus Newman besiedelt waren, konnten den Stamm innerhalb dieses Zeitraums eliminieren. Die Genomsequenzierung der in vivo verwendeten S. aureus Stämme zeigte, dass lediglich S. aureus DIP für das Leukozidin LukMF‘ kodiert. Das lässt vermuten, dass die Präsenz des Virulenzfaktors für die gesteigerte Virulenz von S. aureus DIP verantwortlich sein könnte.
Des Weiteren sollten in dieser Arbeit ein Besiedlungsmodell mit murinen S. aureus-Isolaten etabliert und die beteiligten Immunzellen quantifiziert werden. Es zeigte sich, dass Mäuse mit murinen S. aureus-Isolaten bis zu 7 Tage besiedelt werden können wohingegen S. aureus Newman zu diesem Zeitpunkt nur noch in 20 % der Tiere nachweisbar war. Zudem konnte bei der intranasalen Besiedlung mit einer hohen Dosis S. aureus DIP [1 × 10^8 CFU] gezeigt werden, dass sowohl Th17-Zellen als auch γδ-T-Zellen nach 7 Tagen IL-17A, IL-17F und IL-22 produzieren. Jedoch konnte die Zytokinproduktion nur in Tieren nachgewiesen werden, die einen hohen Belastungsscore aufwiesen. Da nach 24 Stunden bei Tieren mit hohem Belastungsscore auch Bakterien in der Lunge detektiert wurde, ist anzunehmen, dass S. aureus diese Tiere nicht nur besiedelt, sondern bei ihnen auch eine Atemwegsinfektion verursacht hatte. Durch den geringen prozentualen Anteil an ILCs in den zervikalen Lymphknoten war es nicht möglich Rückschlüsse auf deren Zytokinproduktion zu ziehen. Somit gelang es zwar ein murines S. aureus-Besiedlungsmodell zu etablieren, jedoch kann keine Aussage zu den beteiligten Zellen des Immunsystems getroffen werden.
Zusammenfassend konnte gezeigt werden, dass Labormäuse mit mausadaptierten S. aureus-Stämmen länger besiedelt werden können als mit dem humanen Referenzstamm Newman. Zudem konnte mit Hilfe des mausadaptierten Stammes S. aureus DIP die Infektionsdosis im Pneumonie- und Bakteriämiemodell erheblich reduziert werden. Somit gelang es Mausmodelle durch die Verwendung von mausadaptierten S. aureus-Stämmen zu optimieren, auch wenn das nicht auf alle getesteten Isolate zutrifft. Durch die Anpassung an den murinen Wirt stellen mausadaptierte S. aureus-Stämme wie DIP und JSNZ ein physiologischeres Modell der Pathogen-Wirts-Interaktion dar. Die Verwendung eines solchen Stammes ermöglicht es ein besseres Verständnis für Infektionsprozesse und die Pathogen-Wirt-Interaktionen zu erlangen und dadurch eventuell neue Therapiemöglichkeiten zu entwickeln.
Es ist zu berücksichtigen, dass auch die Verwendung mausadaptierter S. aureus-Stämme in murinen Besiedlungs- und Infektionsmodellen lediglich ein Modell darstellt, welches Vor- und Nachteile hat. Daher ist es essenziell, dass Wissenschaftler die Grenzen jedes Modellsystems kennen und das richtige Infektionsmodell (oder eine Kombination davon) auswählen, um ihre Forschungsfragen zu beantworten.
Staphylococcus aureus can cause life-threatening diseases, and hospital- as well as community-associated antibiotic-resistant strains are an emerging global public health problem. Therefore, prophylactic vaccines or immune-based therapies are considered as alternative treatment opportunities. To develop such novel treatment approaches, a better understanding of the bacterial virulence and immune evasion mechanisms and their potential effects on immune-based therapies is essential. One important staphylococcal virulence factor is alpha-toxin, which is able to disrupt the epithelial barrier in order to establish infection. In addition, alpha-toxin has been reported to modulate other cell types including immune cells. Since CD4+ T cell-mediated immunity is required for protection against S. aureus infection, we were interested in the ability of alpha-toxin to directly modulate CD4+ T cells. To address this, murine naïve CD4+ T cells were differentiated in vitro into effector T cell subsets in the presence of alpha-toxin. Interestingly, alpha-toxin induced death of Th1-polarized cells, while cells polarized under Th17 conditions showed a high resistance toward increasing concentrations of this toxin. These effects could neither be explained by differential expression of the cellular alpha-toxin receptor ADAM10 nor by differential activation of caspases, but might result from an increased susceptibility of Th1 cells toward Ca2+-mediated activation-induced cell death. In accordance with the in vitro findings, an alpha-toxin-dependent decrease of Th1 and concomitant increase of Th17 cells was observed in vivo during S. aureus bacteremia. Interestingly, corresponding subsets of innate lymphoid cells and γδ T cells were similarly affected, suggesting a more general effect of alpha-toxin on the modulation of type 1 and type 3 immune responses. In conclusion, we have identified a novel alpha-toxin-dependent immunomodulatory strategy of S. aureus, which can directly act on CD4+ T cells and might be exploited for the development of novel immune-based therapeutic approaches to treat infections with antibiotic-resistant S. aureus strains.
Oxidation-Specific Epitopes (OSEs) Dominate the B Cell Response in Murine Polymicrobial Sepsis
(2020)
In murine abdominal sepsis by colon ascendens stent peritonitis (CASP), a strong increase in serum IgM and IgG antibodies was observed, which reached maximum values 14 days following sepsis induction. The specificity of this antibody response was studied in serum and at the single cell level using a broad panel of bacterial, sepsis-unrelated as well as self-antigens. Whereas an antibacterial IgM/IgG response was rarely observed, studies at the single-cell level revealed that IgM antibodies, in particular, were largely polyreactive. Interestingly, at least 16% of the IgM mAbs and 20% of the IgG mAbs derived from post-septic mice showed specificity for oxidation-specific epitopes (OSEs), which are known targets of the innate/adaptive immune response. This identifies those self-antigens as the main target of B cell responses in sepsis.
Although antigen-specific priming of antibody responses is impaired during sepsis, there is nevertheless a strong increase in IgM and IgG serum concentrations. Using colon ascendens stent peritonitis (CASP), a mouse model of polymicrobial abdominal sepsis, we observed substantial increases in IgM as well as IgG of all subclasses, starting at day 3 and peaking 2 weeks after sepsis induction. The dominant source of antibody-secreting cells was by far the spleen, with a minor contribution of the mesenteric lymph nodes. Remarkably, sepsis induction in splenectomized mice did not change the dynamics of the serum IgM/IgG reaction, indicating that the marginal zone B cells, which almost exclusively reside in the spleen, are dispensable in such a setting. Hence, in systemic bacterial infection, the function of the spleen as dominant niche of antibody-producing cells can be compensated by extra-splenic B cell populations as well as other lymphoid organs. Depletion of CD4+ T cells did not affect the IgM response, while it impaired IgG generation of all subclasses with the exception of IgG3. Taken together, our data demonstrate that the robust class-switched antibody response in sepsis encompasses both T cell-dependent and -independent components.
Staphylococcus aureussuperantigens (SAgs) are among the most potent T cell mitogensknown.They stimulate large fractions of T cells by cross-linking their T cell receptor withmajor histocompatibility complex class-II molecules on antigen presenting cells, resulting in Tcell proliferation and massive cytokine release. To date, 26 different SAgs have been described in thespeciesS. aureus; they comprise the toxic shock syndrome toxin (TSST-1), as well as 25 staphylococcalenterotoxins (SEs) or enterotoxin-like proteins (SEls). SAgs can cause staphylococcal food poisoningand toxic shock syndrome and contribute to the clinical symptoms of staphylococcal infection. Inaddition, there is growing evidence that SAgs are involved in allergic diseases. This review providesan overview on recent epidemiological data on the involvement ofS. aureusSAgs and anti-SAg-IgEin allergy, demonstrating that being sensitized to SEs—in contrast to inhalant allergens—is associatedwith a severe disease course in patients with chronic airway inflammation. The mechanisms by whichSAgs trigger or amplify allergic immune responses, however, are not yet fully understood. Here, wediscuss known and hypothetical pathways by which SAgs can drive an atopic disease