Macrophages express several lipopolysaccharide (LPS) binding proteins and are potently activated by LPS to produce inflammatory mediators. Recent studies have shown that receptors for exogenous nucleotides (P2X and P2Y purinergic receptors) can modulate macrophage production of TNF-α , IL-1β and nitric oxide (NO) following LPS exposure. Macrophages and LPS-stimulated monocytes express elevated levels of P2Y 1 , P2Y 2 and P2X 7 mRNA, suggesting that both P2Y and P2X receptors can contribute to LPS-induced pathophysiology. In addition, oxidized-ATP treatment (which inhibits P2X 7 ) of macrophages blocks LPS-induced NO production, NF-κB and ERK-1/2 activation. Also, an LPS-binding domain located in the P2X 7 C-terminus appears important for receptor trafficking/function. Moreover, the purinergic receptor ligand 2-MeS-ATP attenuates LPS-induced cytokine and NO production in vivo and ex vivo. These data suggest that P2X 7 and certain P2Ys are linked to LPS effects, although their relative contribution in vivo is unclear. Accordingly, we tested the capacity of several adenine nucleotides to modulate LPS-induced mortality in mice. We found that the P2X 7 -directed ligand BzATP was unable to prevent LPS-induced death, whereas 2-MeS-ATP and 2-Cl-ATP, which bind to multiple P2X and P2Y receptors were able to protect mice from LPS-induced death. These data suggest that the co-ordinate action of P2Y and P2X 7 receptors are critical for controlling LPS responses in vivo and that agents directed against both receptor classes may provide the greatest therapeutic advantage.
Activation of the P2X(7) receptor by extracellular nucleotides modulates multiple immune functions, including inflammatory mediator production, membrane fusion events, and apoptosis. Previous studies have revealed that the C terminus of this multimeric cation channel possesses a lipid-interaction motif that has been proposed to regulate receptor function. This domain is homologous to the LPS binding region of the LPS binding protein, and we demonstrated that two basic residues (Arg(578), Lys(579)) within this motif are essential for LPS binding to P2X(7) in vitro. Because P2X(7) can influence LPS action, and because lipid interaction motifs modulate the trafficking of other ion channel-linked receptors, we hypothesized that this motif of P2X(7) is critical for receptor function and trafficking. In these studies we mutated Arg(578) and Lys(579) of P2X(7), and the expression profile, channel activity, and pore formation of the mutant were characterized in transfected human embryonic kidney 293 cells. In contrast with the wild-type receptor, the P2X(7)-R578E/K579E mutant fails to demonstrate surface immunoreactivity despite normal levels of total protein expression. This effect on the mutant receptor is unlikely to result from widespread defects in protein folding, because surface localization, determined using conformation-specific Abs, can be restored by growing the cells at 25degreesC, conditions that slow receptor recycling. Despite surface expression at reduced temperatures, at 25degreesC the P2X7-R578E/K579E mutant still exhibits greatly reduced sodium, potassium, and calcium channel activity when compared with the wild-type receptor, and cannot induce pore formation. These data suggest that the lipid interaction motif of the P2X(7) C terminus controls receptor trafficking and modulates channel activity.
Activation of the P2X7 receptor by extracellular nucleotides modulates multiple immune functions, including inflammatory mediator production, membrane fusion events, and apoptosis. Previous studies have revealed that the C terminus of this multimeric cation channel possesses a lipid-interaction motif that has been proposed to regulate receptor function. This domain is homologous to the LPS binding region of the LPS binding protein, and we demonstrated that two basic residues (Arg578, Lys579) within this motif are essential for LPS binding to P2X7 in vitro. Because P2X7 can influence LPS action, and because lipid interaction motifs modulate the trafficking of other ion channel-linked receptors, we hypothesized that this motif of P2X7 is critical for receptor function and trafficking. In these studies we mutated Arg578 and Lys579 of P2X7, and the expression profile, channel activity, and pore formation of the mutant were characterized in transfected human embryonic kidney 293 cells. In contrast with the wild-type receptor, the P2X7-R578E/K579E mutant fails to demonstrate surface immunoreactivity despite normal levels of total protein expression. This effect on the mutant receptor is unlikely to result from widespread defects in protein folding, because surface localization, determined using conformation-specific Abs, can be restored by growing the cells at 25°C, conditions that slow receptor recycling. Despite surface expression at reduced temperatures, at 25°C the P2X7-R578E/K579E mutant still exhibits greatly reduced sodium, potassium, and calcium channel activity when compared with the wild-type receptor, and cannot induce pore formation. These data suggest that the lipid interaction motif of the P2X7 C terminus controls receptor trafficking and modulates channel activity.
During infection or inflammation, high concentrations of extracellular nucleotides are released into the inflammatory microenvironment, supplying a source of ligand for purinergic receptors that are present on many immune cell types. The P2X7 receptor, a member of the P2X purinergic receptor family of ATP‐gated ion channels, is thought to play an important role in monocyte/macrophage activation. One factor that can powerfully activate macrophages is bacterial lipopolysaccharide (endotoxin, LPS) and although the mechanisms involved in this process are not well understood, it is clear that LPS activation of macrophages is central to the development of septic shock in response to Gram‐negative bacteria. Several lines of evidence have demonstrated strong modulatory effects of adenine nucleotides on the events associated with LPS stimulation of macrophages. Further, because the signal transduction cascades initiated in macrophages upon LPS exposure are similar to those resulting from P2X7 receptor stimulation, and because antagonism of the P2X7 receptor can attenuate LPS‐stimulated signaling events and mediator release, the P2X7 receptor has been implicated in the control of macrophage responses to LPS. In addition, our laboratory has identified a consensus LPS‐binding motif at the extreme carboxyl terminus of the P2X7 receptor, further supporting the potential for a direct interaction between LPS and this purinergic receptor. In this review, we discuss potential regulatory domains and structural features of the P2X7 receptor and outline some of the signal transduction pathways activated by P2X7 receptor agonists. Moreover, we present evidence supporting a critical role for the P2X7 receptor in modulating or mediating some of the biological effects of LPS in macrophages. Drug Dev. Res. 53:91–104, 2001. © 2001 Wiley‐Liss, Inc.
The nucleotide receptor P2X7 has been shown to modulate LPS-induced macrophage production of numerous inflammatory mediators. Although the C-terminal portion of P2X7 is thought to be essential for multiple receptor functions, little is known regarding the structural motifs that lie within this region. We show here that the P2X7 C-terminal domain contains several apparent protein-protein and protein-lipid interaction motifs with potential importance to macrophage signaling and LPS action. Surprisingly, P2X7 also contains a conserved LPS-binding domain. In this report, we demonstrate that peptides derived from this P2X7 sequence bind LPS in vitro. Moreover, these peptides neutralize the ability of LPS to activate the extracellular signal-regulated kinases (ERK1, ERK2) and to promote the degradation of the inhibitor of κB-α isoform (IκB-α) in RAW 264.7 macrophages. Collectively, these data suggest that the C-terminal domain of P2X7 may directly coordinate several signal transduction events related to macrophage function and LPS action.
Purinergic receptors of the P2 class are cell surface receptors which are sensitive to extracellular adenine nucleotides, such as ATP and ADP. This class of receptors is divided into the P2Y family of G protein-coupled receptors and the P2X family of ligand-gated ion channels. The P2X receptors, seven of which have been cloned, are thought to possess two transmembrane domains and function as multimeric complexes. Numerous studies have suggested a role for P2 receptors in activation of macrophages by Gram-negative bacterial endotoxin (lipopolysaccharide; LPS). LPS is thought to exert its toxic effects, in large part, by inducing macrophages to release inflammatory mediators such as tumor necrosis factor α (TNFα), interleukin-1 (IL-1) and nitric oxide (NO). Although multiple signal transduction pathways are activated by LPS in macrophages, the proximal mechanisms by which LPS exerts these effects remain unclear. The current study examines the role of the P2X7/P2Z purinergic receptor in LPS signaling events and in nitric oxide (NO) production. The results indicate that the P2X7receptor is required for maximal LPS activation of the mitogenactivated protein (MAP) kinases extracellular signal-regulated kinase (ERK)1 and ERK2, for activation of nuclear factor (NF)-κB, as well as for upregulation of the inducible form of nitric oxide synthase (iNOS). These results are fortified by our recent observation that the C-terminus of the P2X7receptor is homologous to conserved LPS binding domains of proteins critical to host responses to Gram-negative bacterial infection, such as LPS-binding protein (LBP) and bactericidal permeability-increasing protein (BPI). Taken together, these observations suggest that the P2X7receptor plays a fundamental role in LPS signal transduction and activation of macrophages, and thus may represent a therapeutic target for Gram-negative bacterial septicemia.
Previous studies have suggested that the P2Z/P2X7 purinergic receptor can participate in nucleotide-induced modulation of lipopolysaccharide (LPS) stimulated inflammatory mediator production. To test this hypothesis, we evaluated whether antagonism of the P2Z/P2X7 receptor can influence LPS signaling and expression of the inducible form of nitric-oxide synthase (iNOS) in RAW 264.7 macrophages. In the present study, we demonstrate that pretreatment of RAW 264.7 macrophages with a P2Z/P2X7 receptor antagonist, periodate oxidized adenosine 5'-triphosphate (o-ATP), substantially inhibits LPS-stimulated NO production and iNOS expression without altering cell viability. This effect on LPS-induced iNOS expression is mimicked by a pyridoxal-phosphate-based antagonist (pyridoxal-phosphate-6-azophenyl-2',4'-disulfonic acid) of the P2Z/P2X7 purinergic receptor, indicating that these results are not unique to o-ATP. Additionally, o-ATP prevents cell death induced by P2Z/P2X7 receptor agonists. To ascertain how P2Z/P2X7 receptor antagonists influence LPS signaling, we evaluated the capacity of o-ATP to regulate LPS-mediated activation of the transcription factor, nuclear factor-kappaB, and the mitogen-activated protein kinases, extracellular signal-regulated kinase (ERK) 1 and ERK2. These experiments reveal that pretreatment of RAW 264.7 cells with o-ATP attenuates the LPS stimulation of a nuclear factor-kappaB-like binding activity. Moreover, the activation of ERK1 and ERK2 by LPS, but not by the phorbol ester, phorbol 12-myristate 13-acetate, is also blocked in RAW 264.7 cells by o-ATP pretreatment. In summary, these data suggest that the P2Z/P2X7 receptor modulates LPS-induced macrophage activation as assessed by iNOS expression and NO production. This report implicates the P2Z/P2X7 receptor in the control of protein kinase cascades and transcriptional processes, and these observations are likely to be important for the development of selective purinergic receptor antagonists for the treatment of septic shock.
Macrophage activation is central to the progression of multiple diseases via the release of inflammatory mediators such as cytokines and nitric oxide. Despite the recognized overlap in the regulatory mechanisms involved in mediator production, little information exists regarding receptor-initiated signaling pathways that coordinately control multiple end points, such as tumor necrosis factor-alpha (TNF-alpha) and nitric oxide production. In this study, the expression of inducible nitric oxide synthase (iNOS) in macrophages is shown to be regulated by calcium and by a purinoreceptor signaling system. The P-2Y purinoreceptor partial agonist, 2-methylthio-ATP (2-MeS-ATP), inhibits the expression of iNOS induced by lipopolysaccharide (LPS) plus interferon-gamma (IFN-gamma) in primary macrophages. Additionally, 2-MeS-ATP attenuates the expression of iNOS in macrophages isolated from CD-1 mice challenged with LPS, and it inhibits LPS-induced TNF-alpha and interleukin-1 alpha (IL-1 alpha) release, thereby preventing endotoxic death. Thus, purinoreceptors and calcium are likely to be critical for macrophage activation and the production of inflammatory mediators stimulated by LPS.
Macrophage activation is central to the pathogenesis of a number of diseases that involve the excessive release of inflammatory mediators such as cytokines and nitric oxide (NO). Recent studies have shown that adenine nucleotides (ATP/ADP) and their receptors (P2 receptors, especially the P2Y class) are critically linked to macrophage responsiveness. We have found that lipopolysaccharide (LPS, endotoxin) stimulation of macrophages is modulated by purines wherein an ATP analog, 2-methylthio-ATP (2-MeS-ATP), reduces macrophage activation in both in vitro and in vivo models of endotoxemia. Specifically, the nucleotides 2-MeS-ATP and 2-Cl-ATP protect mice from a lethal challenge of LPS, and 2-MeS-ATP decreases the release of interleukin-1 (IL-1), tumor necrosis factor (TNF-alpha), and NO, but not IL-6 in response to LPS. Interestingly, TNF-alpha-stimulated NO release from macrophages is not inhibited by 2-MeS-ATP suggesting that adenine nucleotides modulate specific macrophage functions, compared with a toxic or nonselective mode of action. In this regard, it has been found that the decrease in NO release mediated by 2-MeS-ATP correlates with decreased expression of inducible nitric oxide synthase (iNOS) and iNOS mRNA in mouse peritoneal macrophages. Besides these effects on cytokine function, extracellular ATP/ADP have also been found to increase the binding of monocytes to various substrates mediated by Mac-1 integrin activation. In summary, because ATP and ADP are present in high concentrations at sites of inflammation, these purines may provide a signal for macrophage activation, and agents that modulate macrophage sensitivity to purines represent a powerful mode of therapy for a variety of inflammatory disorders such as endotoxemia. (C) 1997 Wiley-Liss, Inc.
In interphase cells, alpha-casein kinase I (alpha-CKI) is found associated with cytosolic vesicular structures, the centrosome, and within the nucleus. To identify the specific vesicular structures with which alpha-CKI is associated, established cell lines and primary rat neurons were immunofluorescently labeled with an antibody raised to alpha-CKI. In nonneuronal cells, alpha-CKI colocalizes with vesicular structures which align with microtubules and are partially coincident with both Golgi and endoplasmic reticulum markers. In neurons, alpha-CKI colocalizes with synaptic vesicle markers. When synaptic vesicles were purified from rat brain, they were highly enriched in a CKI, based on activity and immunoreactivity. The synaptic vesicle-associated CKI is an extrinsic kinase and was eluted from synaptic vesicles and purified. This purified CKI has properties most similar to alpha-CKI. When the activities of casein kinase I or II were specifically inhibited on isolated synaptic vesicles, CKI was shown to phosphorylate a specific subset of vesicle proteins, one of which was identified as the synaptic vesicle-specific protein SV2. As with alpha-CKI, the synaptic vesicle CKI is inhibited by phosphatidylinositol 4,5-bisphosphate (PIP2). However, synthesis of PIP2 was detected only in plasma membrane-containing fractions. Therefore, PIP2 may spatially regulate CKI. Since PIP2 synthesis is required for secretion, this inhibition of CKI may be important for the regulation of secretion.
Regulated fusion of secretory granules with the plasma membrane in secretory cells requires ATP, Ca2+ and cytosolic as well as membrane proteins. ATP-dependent steps in Ca(2+)-activated secretion from PC12 cells require three cytosolic PEP proteins (priming in exocytosis proteins, PEP1-3), the identity of which will provide insights into the required ATP-using reactions. PEP3 was recently identified as phosphatidylinositol transfer protein (PtdInsTP), and here we report that PEP1 consists of the type I phosphatidylinositol-4-phosphate 5-kinase (PtdInsP5K). The roles of PEP3/PtdInsTP and PEP1/PtdInsP5K in sequential phosphoinositide recruitment and phosphorylation explains their synergistic activity in ATP-dependent priming. Moreover, inhibition of Ca(2+)-activated secretion by PtdIns(4,5)P2-specific antibodies and phospholipase C implies that 5-phosphorylated inositides play a novel, necessary role in the regulated secretory pathway. The results indicate that lipid kinase-mediated phosphorylation is an important basis for ATP use in the exocytotic pathway.
A phosphatidylinositol 4-phosphate (PIP) kinase was isolated and purified to near homogeneity from bovine erythrocyte membranes. The PIP kinase was extracted from bovine erythrocyte membranes with a high salt wash, followed by phosphocellulose and phenyl-Sepharose chromatography. The predominant protein after phenyl-Sepharose purification had a molecular size of 68 kDa. Renaturation of PIP kinase activity after SDS-PAGE showed that a 68-kDa protein was able to phosphorylate PIP. An antibody developed against the 68-kDa protein Western blots the 68-kDa protein and is able to immunoprecipitate the 68-kDa protein and PIP kinase activity from membrane extracts. Based on functional studies, the 68-kDa protein is indistinguishable from the type I PIP kinase previously characterized from human erythrocyte membranes (Bazenet, C. E., Ruano, A.R., Brockman, J.L., and Anderson, R.A. (1990) J. Biol. Chem. 265, 18012-18022). These studies also show that the type I PIP kinases, but not the type II PIP kinase, are stimulated by phosphatidic acid, suggesting alternative roles for these enzymes. Two immunoreactive isoforms of the type I PIP kinase, of 68 and 90 kDa, were identified in rat brain and partially purified. Both of these isoforms are also stimulated by phosphatidic acid.
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