999 resultados para P2X7 receptor


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P2X7 receptors play an important role in inflammatory hyperalgesia, but the mechanisms involved in their hyperalgesic role are not completely understood. In this study, we hypothesized that P2X7 receptor activation induces mechanical hyperalgesia via the inflammatory mediators bradykinin, sympathomimetic amines, prostaglandin E2 (PGE2), and pro-inflammatory cytokines and via neutrophil migration in rats. We found that 2'(3')-O-(4-benzoylbenzoyl)adenosine 5'-triphosphate triethylammonium salt (BzATP), the most potent P2X7 receptor agonist available, induced a dose-dependent mechanical hyperalgesia that was blocked by the P2X7 receptor-selective antagonist A-438079 but unaffected by the P2X1,3,2/3 receptor antagonist TNP-ATP. These findings confirm that, although BzATP also acts at both P2X1 and P2X3 receptors, BzATP-induced hyperalgesia was mediated only by P2X7 receptor activation. Co-administration of selective antagonists of bradykinin B1 (Des-Arg(8)-Leu(9)-BK (DALBK)) or B2 receptors (bradyzide), β1 (atenolol) or β2 adrenoceptors (ICI 118,551), or local pre-treatment with the cyclooxygenase inhibitor indomethacin or the nonspecific selectin inhibitor fucoidan each significantly reduced BzATP-induced mechanical hyperalgesia in the rat hind paw. BzATP also induced the release of the pro-inflammatory cytokines tumor necrosis factor α (TNF-α), interleukin (IL)-1β, IL-6 and cytokine-induced neutrophil chemoattractant-1 (CINC-1), an effect that was significantly reduced by A-438079. Co-administration of DALBK or bradyzide with BzATP significantly reduced BzATP-induced IL-1β and CINC-1 release. These results indicate that peripheral P2X7 receptor activation induces mechanical hyperalgesia via inflammatory mediators, especially bradykinin, which may contribute to pro-inflammatory cytokine release. These pro-inflammatory cytokines in turn may mediate the contributions of PGE2, sympathomimetic amines and neutrophil migration to the mechanical hyperalgesia induced by local P2X7 receptor activation.

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BACKGROUND: Intestinal ischemia followed by reperfusion (I/R) may occur following intestinal obstruction. In rats, I/R in the small intestine leads to structural changes accompanied by neuronal death. AIM: To analyze the impact of I/R injury on different neuronal populations in the myenteric plexus of rat ileum. METHODS: The ileal artery was occluded for 35 min and animals were euthanized 6, 24, and 72 h, and 1 week later. Immunohistochemistry was performed with antibodies against the P2X7 receptor as well as nitric oxide synthase (NOS), calbindin, calretinin, choline acetyltransferase (ChAT), or the pan-neuronal marker anti-HuC/D. RESULTS: Double immunolabeling demonstrated that 100% of NOS-, calbindin-, calretinin-, and ChAT-immunoreactive neurons in all groups expressed the P2X7 receptor. Following I/R, neuronal density decreased by 22.6% in P2X7 receptor-immunoreactive neurons, and decreased by 46.7, 38, 39.8, 21.7, and 20% in NOS-, calbindin-, calretinin-, ChAT-, and HuC/D-immunoreactive neurons, respectively, at 6, 24, and 72 h and 1 week following injury compared to the control and sham groups. We also observed a 14% increase in the neuronal cell body profile area of the NOS-immunoreactive neurons at 6 and 24 h post-I/R and a 14% increase in ChAT-immunoreactive neurons at 1 week following I/R. However, the average size of the calretinin-immunoreactive neurons was reduced by 12% at 6 h post-I/R and increased by 8% at 24 h post-I/R. CONCLUSIONS: This work demonstrates that I/R is associated with a significant loss of different subpopulations of neurons in the myenteric plexus accompanied by morphological changes, all of which may underlie conditions related to intestinal motility disorder

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Microbial colonization of the gut induces the development of gut-associated lymphoid tissue (GALT). The molecular mechanisms that regulate GALT function and result in gut-commensal homeostasis are poorly defined. T follicular helper (Tfh) cells in Peyer's patches (PPs) promote high-affinity IgA responses. Here we found that the ATP-gated ionotropic P2X7 receptor controls Tfh cell numbers in PPs. Lack of P2X7 in Tfh cells enhanced germinal center reactions and high-affinity IgA secretion and binding to commensals. The ensuing depletion of mucosal bacteria resulted in reduced systemic translocation of microbial components, lowering B1 cell stimulation and serum IgM concentrations. Mice lacking P2X7 had increased susceptibility to polymicrobial sepsis, which was rescued by Tfh cell depletion or administration of purified IgM. Thus, regulation of Tfh cells by P2X7 activity is important for mucosal colonization, which in turn results in IgM serum concentrations necessary to protect the host from bacteremia.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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The expression of P2Z/P2X7 purinoceptor in different cell types is well established. This receptor is a member of the ionotropic P2X receptor family, which is composed by seven cloned receptor subtypes (P2X1 - P2X7). Interestingly, the P2Z/P2X7 has a unique feature of being linked to a non-selective pore which allows the passage of molecules up to 900 Da depending on the cell type. Early studies of P2Z/P2X7 purinoceptor were exclusively based on classical pharmacological studies but the recent tools of molecular biology have enriched the analysis of the receptor expression. The majority of assays and techniques chosen so far to study the expression of P2Z/P2X7 receptor explore directly or indirectly the effects of the opening of P2Z/P2X7 linked pore. In this review we describe the main techniques used to study the expression and functionality of P2Z/P2X7 receptor. Additionally, the increasing need and importance of a multifunctional analysis of P2Z/P2X7 expression based on flow cytometry technology is discussed, as well as the adoption of a more complete analysis of P2Z/P2X7 expression involving different techniques.

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Embryonic carcinoma cells are widely used models for studying the mechanisms of proliferation and differentiation occurring during early embryogenesis. We have now investigated how down-regulation of P2X2 and P2X7 receptor expression by RNA interference (RNAi) affects neural differentiation and phenotype specification of P19 embryonal carcinoma cells. Wild-type P19 embryonal carcinoma cells or cells stably expressing shRNAs targeting P2X2 or P2X7 receptor expression were induced to differentiate into neurons and glial cells in the presence of retinoic acid. Silencing of P2X2 receptor expression along differentiation promoted cell proliferation and an increase in the percentage of cells expressing glial-specific GFAP, while the presence of beta-3 tubulin-positive cells diminished at the same time. Proliferation induction in the presence of stable anti-P2X2 receptor RNAi points at a mechanism where glial proliferation is favored over growth arrest of progenitor cells which would allow neuronal maturation. Differently from the P2X2 receptor, inhibition of P2X7 receptor expression during neural differentiation of P19 cells resulted in a decrease in cell proliferation and GFAP expression, suggesting the need of functional P2X7 receptors for the progress of gliogenesis. The results obtained in this study indicate the importance of purinergic signaling for cell fate determination during neural differentiation, with P2X2 and P2X7 receptors promoting neurogenesis and gliogenesis, respectively. The shRNAs down-regulating P2X2 or P2X7 receptor gene expression, developed during this work, present useful tools for studying mechanisms of neural differentiation in other stem cell models. (C) 2012 ISDN. Published by Elsevier Ltd. All rights reserved.

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In the majority of cells, the integrity of the plasmalemma is recurrently compromised by mechanical or chemical stress. Serum complement or bacterial pore-forming toxins can perforate the plasma membrane provoking uncontrolled Ca(2+) influx, loss of cytoplasmic constituents and cell lysis. Plasmalemmal blebbing has previously been shown to protect cells against bacterial pore-forming toxins. The activation of the P2X7 receptor (P2X7R), an ATP-gated trimeric membrane cation channel, triggers Ca(2+) influx and induces blebbing. We have investigated the role of the P2X7R as a regulator of plasmalemmal protection after toxin-induced membrane perforation caused by bacterial streptolysin O (SLO). Our results show that the expression and activation of the P2X7R furnishes cells with an increased chance of surviving attacks by SLO. This protective effect can be demonstrated not only in human embryonic kidney 293 (HEK) cells transfected with the P2X7R, but also in human mast cells (HMC-1), which express the receptor endogenously. In addition, this effect is abolished by treatment with blebbistatin or A-438079, a selective P2X7R antagonist. Thus blebbing, which is elicited by the ATP-mediated, paracrine activation of the P2X7R, is part of a cellular non-immune defense mechanism. It pre-empts plasmalemmal damage and promotes cellular survival. This mechanism is of considerable importance for cells of the immune system which carry the P2X7R and which are specifically exposed to toxin attacks.

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Airway epithelium plays an important role in the asthma physiopathology. Aerobic exercise decreases Th2 response in murine models of allergic asthma, but its effects on the structure and activation of airway epithelium in asthma are unknown. BALB/c mice were divided into control, aerobic exercise, ovalbumin-sensitized and ovalbumin-sensitized plus aerobic exercise groups. Ovalbumin sensitization occurred on days 0, 14, 28, 42, and aerosol challenge from day 21 to day 50. Aerobic exercise started on day 22 and ended on day 50. Total cells and eosinophils were reduced in ovalbumin-sensitized group submitted to aerobic exercise. Aerobic exercise also reduced the oxidative and nitrosative stress and the epithelial expression of Th2 cytokines, chemokines, adhesion molecules, growth factors and NF-kB and P2X7 receptor. Additionally, aerobic exercise increased the epithelial expression of IL-10 in non-sensitized and sensitized animals. These findings contribute to the understanding of the beneficial effects of aerobic exercise for chronic allergic airway inflammation, suggesting an immune-regulatory role of exercise on airway epithelium. (C) 2011 Elsevier B.V. All rights reserved.

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Clinical use of antibiotics is based on their capacity to inhibit bacterial growth via bacteriostatic or bacteriocidal effects. In this article, we show that the aminoglycoside antibiotic neomycin, the cyclic lipopeptide antibiotic polymyxin B, and the cyclic peptide antibiotics gramicidin and tyrothricin can induce IL-1β secretion in bone marrow dendritic cells and macrophages. LPS priming was required to trigger the transcription and translation of pro-IL-1β but was independent of TNFR or IL-1R signaling. All four antibiotics required the NLRP3 inflammasome, the adaptor ASC, and caspase-1 activation to secrete IL-1β, a process that depended on potassium efflux but was independent of P2X7 receptor. All four antibiotics induced neutrophil influx into the peritoneal cavity of mice, which required NLRP3 only in the case of polymyxin B. Together, certain antibiotics have the potential to directly activate innate immunity of the host.

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The use of antimycotic drugs in fungal infections is based on the concept that they suppress fungal growth by a direct killing effect. However, amphotericin and nystatin have been reported to also trigger interleukin-1β (IL-1β) secretion in monocytes but the molecular mechanism is unknown. Here we report that only the polyene macrolides amphotericin B, nystatin, and natamycin but none of the tested azole antimycotic drugs induce significant IL-1β secretion in-vitro in dendritic cells isolated from C57BL/6 mouse bone marrow. IL-1β release depended on Toll-like receptor-mediated induction of pro-IL-1β as well as the NLRP3 inflammasome, its adaptor ASC, and caspase-1 for enzymatic cleavage of pro-IL-1β into its mature form. All three drugs induced potassium efflux from the cells as a known mechanism for NLRP3 activation but the P2X7 receptor was not required for this process. Natamycin-induced IL-1β secretion also involved phagocytosis, as cathepsin activation as described for crystal-induced IL-1β release. Together, the polyene macrolides amphotericin B, nystatin, and natamycin trigger IL-1β secretion by causing potassium efflux from which activates the NLRP3-ASC-caspase-1. We conclude that beyond their effects on fungal growth, these antifungal drugs directly activate the host's innate immunity.

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Neuroinflammation is the local reaction of the brain to infection, trauma, toxic molecules or protein aggregates. The brain resident macrophages, microglia, are able to trigger an appropriate response involving secretion of cytokines and chemokines, resulting in the activation of astrocytes and recruitment of peripheral immune cells. IL-1β plays an important role in this response; yet its production and mode of action in the brain are not fully understood and its precise implication in neurodegenerative diseases needs further characterization. Our results indicate that the capacity to form a functional NLRP3 inflammasome and secretion of IL-1β is limited to the microglial compartment in the mouse brain. We were not able to observe IL-1β secretion from astrocytes, nor do they express all NLRP3 inflammasome components. Microglia were able to produce IL-1β in response to different classical inflammasome activators, such as ATP, Nigericin or Alum. Similarly, microglia secreted IL-18 and IL-1α, two other inflammasome-linked pro-inflammatory factors. Cell stimulation with α-synuclein, a neurodegenerative disease-related peptide, did not result in the release of active IL-1β by microglia, despite a weak pro-inflammatory effect. Amyloid-β peptides were able to activate the NLRP3 inflammasome in microglia and IL-1β secretion occurred in a P2X7 receptor-independent manner. Thus microglia-dependent inflammasome activation can play an important role in the brain and especially in neuroinflammatory conditions.

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How inflammatory caspases trigger pyroptotic cell death is mostly unexplained. In this issue of Immunity, Núñez and colleagues report that caspase-11 cleaves the transmembrane channel pannexin-1, causing an efflux of cellular ATP that promotes a P2X7 receptor-dependent pyroptosis.

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The colocalization, number, and size of various classes of enteric neurons immunoreactive (IR) for the purinergic P2X2 and P2X7 receptors (P2X2R, P2X7R) were analyzed in the myenteric and submucosal plexuses of control, undernourished, and re-fed rats. Pregnant rats were exposed to undernourishment (protein-deprivation) or fed a control diet, and their offspring comprised the following experimental groups: rats exposed to a normal diet throughout gestation until postnatal day (P)42, rats protein-deprived throughout gestation and until P42, and rats protein-deprived throughout gestation until P21 and then given a normal diet until P42. Immunohistochemistry was performed on the myenteric and submucosal plexuses to evaluate immunoreactivity for P2X2R, P2X7R, nitric oxide synthase (NOS), choline acetyltransferase (ChAT), calbindin, and calretinin. Double-immunohistochemistry of the myenteric and submucosal plexuses demonstrated that 100% of NOS-IR, calbindin-IR, calretinin-IR, and ChAT-IR neurons in all groups also expressed P2X2R and P2X7R. Neuronal density increased in the myenteric and submucosal plexuses of undernourished rats compared with controls. The average size (profile area) of some types of neurons in the myenteric and submucosal plexuses was smaller in the undernourished than in the control animals. These changes appeared to be reversible, as animals initially undernourished but then fed a normal diet at P21 (re-feeding) were similar to controls. Thus, P2X2R and P2X7R are present in NOS-positive inhibitory neurons, calbindin- and calretinin-positive intrinsic primary afferent neurons, cholinergic secretomotor neurons, and vasomotor neurons in rats. Alterations in these neurons during undernourishment are reversible following re-feeding

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In den letzten Jahren gewann die Erforschung des Sphingolipidstoffwechsels in den verschiedensten Zellsystemen immer mehr an Bedeutung, da es sich zeigte, dass einige Sphingolipidspezies, vor allem Ceramid und Sphingosin-1-Phosphat, als wichtige intra- und extrazelluläre Botenstoffe wirken und bei einer Vielzahl unterschiedlicher zellulärer Antworten, wie Apoptose, Proliferation und Migration, eine wichtige Rolle spielen. Während Ceramid eher pro-apoptotisch und wachstumshemmend wirkt, begünstigt Sphingosin-1-Phosphat als „Gegenspieler“ eher die Proliferation und das Zellwachstum. Ceramid kann relativ schnell in Sphingosin-1-Phosphat umgewandelt werden durch die Wirkung zweier Enzymklassen, den Ceramidasen und den Sphingosinkinasen. Konsequenterweise ist die Regulation dieser Enzyme von entscheidender Bedeutung für das zelluläre Gleichgewicht zwischen Ceramid und Sphingosin-1-Phosphat. Im Rahmen dieser Dissertation wurde die Wirkung von extrazellulären Nukleotiden, die ebenfalls als Regulatoren zahlreicher zellulärer Antworten, wie z.B. Proliferation und Migration, bekannt sind und über entsprechende Oberflächenrezeptoren, die Purinrezeptoren, wirken, auf die Aktivität besonders der Sphingosinkinasen 1 und 2 näher untersucht. Es sollte geklärt werden, ob die Sphingosinkinasen an einigen durch extrazelluläre Nukleotide induzierbaren zellulären Antworten, in diesem Falle der Migration und der Proliferation von Zellen, beteiligt sind. Als Zellsystem wurden Nierenmesangiumzellen verwendet, da diese Zellen bei verschiedenen entzündlichen Nierenerkrankungen (Glomerulonephritiden) eine wichtige Rolle spielen. Es konnte in dieser Arbeit gezeigt werden, dass extrazelluläre Nukleotide die Aktivität der Sphingosinkinase 1 in den Mesangiumzellen stimulieren können. Zu beobachten ist dabei eine biphasische Aktivitätssteigerung der Sphingosinkinase 1. Die erste Aktivitätssteigerung nach einer Kurzzeitstimulation ist dabei auf eine Phosphorylierung des Enzyms zurückzuführen, während die zweite Aktivitätssteigerung mit einer Aktivierung des Sphingosinkinase 1-Promotors, einer verstärkten mRNA-Expression und einer de novo Proteinsynthese zu erklären ist. Diese Induktion kann durch die Verwendung von Hemmstoffen des PKC- und MAPK-Signalweges, sowie durch Verwendung eines Transkriptions- (Actinomycin D) oder eines Translationsinhibitors (Cycloheximid) blockiert werden. Die Halbwertszeit der mRNA der Sphingosinkinase 1 in den Mesangiumzellen konnte auf ca. 20 Minuten bestimmt werden. Im Gegensatz dazu ist die Sphingosinkinase 2 nicht durch ATP aktivierbar, wohl aber durch diverse Abbauprodukte von ATP, wie AMP und Adenosin, sowie durch UTP und seine Abbauprodukten UDP und UMP. Die neutrale Ceramidase kann nicht durch ATP und UTP aktiviert werden, wohl aber durch P2X7-Rezeptoragonisten (Bz-ATP, αβ-Me-ATP, γS-ATP) und TPA. In einem zweiten Schritt wurde die Rolle der Sphingosinkinasen und der neutralen Ceramidase bei der durch extrazelluläre Nukleotide induzierten Migration und Proliferation untersucht. Es zeigte sich mit Hilfe von genspezifischer siRNA zur Depletion der Sphingosinkinasen und der neutralen Ceramidase, sowie durch Verwendung von Kinase-Hemmstoffen und damit einhergehend der Inhibierung der Signalwege und mit Hilfe von verschiedenen Zelllinien isoliert aus Wildtyp-, SPHK 1-überexprimierenden und mSPHK1-defizienten Mäusen, dass die Aktivierung der Sphingosinkinase 1 durch extrazelluläre Nukleotide von entscheidender Bedeutung für die Migrationsfähigkeit der Zellen ist, jedoch keinen signifikanten Einfluss auf die Proliferationsrate der Mesangiumzellen hat. Auch die Aktivität der neutralen Ceramidase ist von entscheidender Bedeutung für die Migrationsfähigkeit der Zellen. Durch Depletion der neutralen Ceramidase scheint Ceramid in den Zellen zu akkumulieren, was die Proliferationsrate reduziert. Für die Proliferation der Mesangiumzellen könnte die Sphingosinkinase 2 als negativer Regulator fungieren, wie die Experimente mit der genspezifischen siRNA unter UTP-Stimulation gezeigt haben. Für die Migration der Mesangiumzellen gilt darüber hinaus, dass auch das Produkt der Sphingosinkinase 1, Sphingosin-1-Phosphat, in der Lage ist, die Migration zu stimulieren. Im Gegensatz dazu spielt Sphingosin-1-Phosphat für die Induktion der Proliferation der hier verwendeten Zellen keine wesentliche Rolle. Zusammenfassend zeigen die Daten, dass die Sphingosinkinase 1 und vorgeschaltet auch die neutrale Ceramidase bei der Migration von Mesangiumzellen eine zentrale Rolle spielen und damit als therapeutische Angriffspunkte bei der Behandlung von Krankheiten, die durch eine vermehrte Migration gekennzeichnet sind, in Frage kommen.

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Melittin, Hauptbestandteil des Bienengifts, ist ein kationisches Peptid, welches in der Lage ist, die biophysikalischen Eigenschaften der Zellmembran zu beeinflussen. Melittin werden unter anderem auch entzündungshemmende, schmerzlindernde, anti-rheumatische und anti-arthritische Wirkungen zugeschrieben. rnIn dieser Arbeit wurde nachgewiesen, dass Melittin die Proteolyse von ADAM10- und ADAM17-Substraten in verschiedenen Zellen stimuliert. Durch das Sheddingvon TGF-α wurde in HaCaT-Keratinozyten eine Transaktivierung des EGF-Rezeptors und eine daraus resultierende Phosphorylierung der Kinase ERK1/2 beobachtet. Die durch Melittin gesteigerte Aktivität der ADAMs ist calciumunabhängig und wird nicht durch Änderungen in der Membranfluidität verursacht. Eine Beteiligung der P2-Rezeptoren an der Melittin-induzierten ADAM-Aktivierung konnte sowohl durch Inhibition der Rezeptoren als auch durch Transfektion von HEK-Zellen mit dem P2X7-Rezeptor nachgewiesen werden. In diesen wurde nach der Behandlung mit Melittin eine Phosphorylierung von ERK1/2 beobachtet, welche durch ATPasen und P2-Rezeptor-Inhibitoren unterdrückt werden konnte. rnMit Hilfe des Kaninchenerythrozyten-Modells wurde nachgewiesen, dass eine Translokation von Phosphatidylserin von der Innen- zur Außenseite der Membran unmittelbar mit einer erhöhten ADAM-Aktivität korreliert. Sowohl durch Aktivierung des P2X7-Rezeptors als auch durch die Behandlung der Zellen mit dem Ionophor A23187 konnte ein Phosphatidylserin-Flip induziert werden. Dieser Flip führte zu einer erhöhten Aktivität von ADAM10, die durch eine gesteigerte Hämolyse und Spaltung von pVCC nachgewiesen werden konnte. Wurde der Phosphatidylserin-Flip durch Inhibitoren des P2X7-Rezeptors bzw. die Chelation von Ca2+ und Hemmung der Ionenfluxe unterdrückt, blieb auch die erhöhte ADAM-Aktivität aus. Wurde dagegen der Phosphatidylserin-Flip erst induziert und nachträglich die Inhibition des P2X7-Rezeptors bzw. die Chelation von Ca2+ und Hemmung der Ionenfluxe durchgeführt, zeigte dies keine Inhibition der ADAM-Aktivität.rnZusammenfassend zeigen diese Ergebnisse, dass eine Exposition von Phosphatidylserin auf der Außenseite der Membran in einem kausalen Zusammenhang mit einer gesteigerten ADAM-Aktivität steht.rn