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Biomedical subjects

M Hatmi

Publications and source records attributed to M Hatmi.

At least 19 recordsLinked to original sources

[Prevention of thrombosis and vascular inflammation: importance of combined cyclooxygenase and 5-lipoxygenase inhibitors].

Aspirin, a standard non-steroidal anti-inflammatory drug (NSAID) is currently used in antithrombotic treatment. However, its use is limited by largely recognized gastrotoxicity and recommended doses are low. The major side effect of aspirin is related to its ability to suppress prostaglandin (PG) synthesis by constitutive cyclooxygenase-1 (COX-1). Specific inhibitors of COX-2, the inducible isoform of COX which was more recently described, have potent antiinflammatory effects. They are associated with minor risk of gastric tractus toxicity and reduced inflammatory leukocyte components known for their proatherothrombotic properties. Nevertheless, recent findings attributed a significant cardiovascular risk to some of them. 5-lipoxygenase (5-LOX), an enzyme mainly expressed by leukocytes, is responsible for the generation of leukotrienes, the major lipidic proinflammatory mediators. Development of combined inhibitors of 5-LOX and COX isoforms 1 and 2 inaugurate an interesting new therapeutic pathway. Indeed, such inhibitors suppress not only the activation of platelets, leukocytes and endothelial cells but also prevent their metabolic and functional interactions. In addition to their broad spectrum inhibition, they may be associated with the minor gastrotoxic effect. Thus, platelet-leukocyte interactions which dominate the underlying inflammatory process particularly in atherosclerosis, might reinforce the benefits of such inhibitors.

Arachidonate 5-Lipoxygenase↗

[What is the place of aspirin in venous thrombosis prophylaxis?].

Since Virchow triade, it is well established that venous thrombosis is a multifactorial process involving various cellular and plasmatic protagonists. Aspirin antihrombotic efficacy seems not only due to its antiplatelet effects and thromboxane A2 synthesis inhibition. Anti-Platelet Trialists Collaboration metaanalysis stressed in 1994 the interest of aspirin treatment leading to 40% reduction of thrombosis relative risk. Regarding studies heterogeneity and outcomes criteria variety, its use in such context remains a matter of debate. Is the recent publication of PEP trial showing a significant decrease of pulmonary embolism mortality (0.6 versus 0.3%, p = 0.03) able to reinforce aspirin use in venous thrombosis prophylaxis? Were numerous and consecutive criticisms justified? Is there still a potential indication for aspirin in this setting? The experts of the last ACCP consensus conference recommended not to recommend aspirin in venous thrombosis prophylaxis with the highest level of evidence (grade A).

Aspirin↗

Platelet release of trimolecular complex components MT1-MMP/TIMP2/MMP2: involvement in MMP2 activation and platelet aggregation.

Matrix metalloproteinase 2 (MMP2) has been reported to be secreted by collagen-stimulated platelets, and active MMP2 has been shown to play a role in platelet aggregation. It has been demonstrated that MMP2 activation is dependent on the complex (membrane type 1 [MT1]-MMP/tissue inhibitor of MMP2 [TIMP2]) receptor and MMP2. We have investigated human platelets as a possible source of MT1-MMP, and we have studied its role in MMP2 activation and in platelet aggregation. Gelatin zymograms showed the existence of MMP2 at proforms (68 kd) and activated-enzyme forms (62-59 kd) in supernatants of resting and activated platelets, respectively. No gelatinolytic activity was associated with the platelet pellet after aggregation, suggesting a total release of MMP2 during cell activation. By Western blot analysis in nonreduced conditions, MT1-MMP was found on resting platelet membranes in 2 forms-the inactive 45-kd form and an apparent 89-kd form, which totally disappeared under reduced conditions. After platelet degranulation, only the 45-kd form was detected. Reverse transcription-polymerase chain reaction experiments showed the expression in platelets of messenger RNA encoding for MMP2, MT1-MMP, and TIMP2. Flow cytometry analysis showed that MT1-MMP, MMP2, and TIMP2 expressions were enhanced at the activated platelet surface. MMP inhibitors, recombinant TIMP2, and synthetic BB94 inhibited collagen-induced platelet aggregation in a concentration-dependent manner, indicating the role of activated MT1-MMP in the modulation of platelet function. In conclusion, our results demonstrate the expression of the trimolecular complex components (MT1-MMP/TIMP2/MMP2) by blood platelets as well as the ability of MMP inhibitors to modulate the aggregating response.

Blood Platelets↗

Inhibition by extracellular cAMP of phorbol 12-myristate 13-acetate-induced prostaglandin H synthase-2 expression in human pulmonary microvascular endothelial cells. Involvement of an ecto-protein kinase A activity.

Exposure of human pulmonary microvascular endothelial cells (HPMECs) to phorbol 12-myristate 13-acetate (PMA) leads to the increase of prostaglandin H synthase (PGHS)-2 protein levels. Under same conditions and according to its constitutive nature, no significant variation of PGHS-1 protein was noted. The elevation of the intracellular cAMP rate is known to enhance PGHS-2 levels through a protein kinase A pathway in various cells. To determine whether the extracellular cAMP also regulates the inducible expression of PGHS, cultured HPMECs were exposed to cAMP alone or in combination with PMA. The PMA-induced PGHS-2 protein was attenuated by the extracellular cAMP. In addition, PGHS-2 activity evaluated through 6-keto-PGF1alpha generation, which was enhanced by PMA was inhibited by extracellular cAMP. Furthermore, in HPMEC medium, PMA-induced PGHS-2 expression was accompanied by the generation of a transferable activity (TA) able to abolish platelet aggregation. This resulting TA was dependent from PGHS-2 pathway, because NS-398, a selective inhibitor of PGHS-2, suppressed its production. The inhibitory TA released by treated HPMECs was also prevented by extracellular cAMP. The specific protein kinase A (PKA) inhibitor blocked the extracellular cAMP effect on both PMA-induced 6-keto-PGF1alpha synthesis and inhibitory TA generation, suggesting the involvement of PKA signaling at the outer surface of HPMECs. Accordingly, we established, in phosphorylation experiments, the presence of an endothelial ecto-protein kinase activity, able to phosphorylate the synthetic substrate kemptide in a cAMP-dependent mode. Reverse transcription-polymerase chain reaction analysis showed that PMA-induced PGHS-2 mRNA was markedly reduced by extracellular cAMP. Together, these findings provide the first experimental evidence that extracellular cAMP is able to reduce HPMEC PGHS-2 expression in terms of mRNA, protein, and enzyme activity through an ecto-PKA pathway. In addition, they outline the potential role of endothelial PGHS-2 in the limitation of platelet activation during inflammatory processes.

Carcinogens↗

Cellular source of human platelet secretory phospholipase A2.

Platelets are one source of the group II extracellular form of phospholipase A2 (sPLA2) which is involved in the amplification of local and systemic inflammation. Although sPLA2 protein has been described in human platelets, its presence in human megakaryocytes has not been yet established. We demonstrated in this study that the human erythroleukaemia (HEL) cell line, which has megakaryoblastic features, constitutively expresses sPLA2. Using an anti-rhsPLA2 monoclonal antibody (mAb BA11) and dot-blot detection, we showed that HEL cells and platelets release sPLA2 into incubation medium upon stimulation by thrombin. Similar results were obtained for sPLA2 activity detected by a spectrofluorescence assay. Enzymatic activity was abolished by mAb BA11 and by protamine. In both cell types, although released, the major part of sPLA2 remained in the cell pellet, and was probably adsorbed at non-specific membrane sites. Double labelling experiments using mAb BA11 and an anti-GPIIb antiserum revealed the presence of sPLA2 in human bone-marrow megakaryocytes. The use of reverse transcription-polymerase chain reaction conjugated with hybridization analysis demonstrated the presence of mRNA encoding for sPLA2 in platelets and HEL cells. Expression of sPLA2 in platelets and megakaryocytes at both transcriptional and post-translational levels strongly argues in favour of a megakaryocytic origin of platelet sPLA2 and rules out a role for endocytosis of the enzyme from plasma by circulating platelets.

Blood Platelets↗

Convulxin, a potent platelet-aggregating protein from Crotalus durissus terrificus venom, specifically binds to platelets.

Convulxin, a very potent aggregating protein from rattlesnake venom, was purified by a new procedure and its heterodimeric structure alpha 3 beta 3 was confirmed. The polypeptide N-terminal sequences of convulxin subunits were determined by Edman degradation. They are very similar and appear homologous to botrocetin from Bothrops jararaca venom and to rattlesnake lectin from Crotalus atrox venom, both being classified among the C-type lectin family. The binding of 125I-labelled convulxin to blood platelets has also been analysed under equilibrium conditions. These studies indicated that convulxin binds to platelets with a high affinity (Kd = 30 pM) on a small number of binding sites (1000 binding sites per cell). The high-affinity binding of convulxin appears specific to platelets, since it is not observed on other cell types such as neutrophils and erythrocytes. Also, the high-affinity binding of convulxin to membranes platelet is not inhibited by alpha-thrombin, fibrinogen, collagen, laminin binding inhibitor, RGDS peptide, adenosine diphosphate, platelet-activating factor-acether, serotonin or epinephrine. This, together with the recent observation that platelet activation by convulxin is partially mediated by phospholipase C and involves other mechanisms as well, indicates that convulxin may interact with a specific platelet acceptor (receptor) protein which has yet to be characterized.

Amino Acid Sequence↗

Signal transduction involved in the platelet adenylate cyclase sensitization associated with PGH2/TxA2 receptor desensitization.

The exposure of human platelets to prostaglandin H2 analogue (PGH2, U46619) induces homologous desensitization and a concomitant adenylate cyclase (AC) sensitization. We demonstrate the involvement of phospholipase C (PLC) in this enzyme sensitization. Pre-incubation of platelets with neomycin, a PLC activity inhibitor, prevented AC sensitization but not PGH2/thromboxane (Tx)A2 receptor desensitization. PGH2/TxA2 receptor desensitization, although necessary, is not sufficient to induce AC sensitization, since neomycin, which prevents AC sensitization, failed to prevent receptor desensitization. Inositol phosphate formation, determined in parallel, was also inhibited. Interestingly, no guanylate cyclase sensitization was noted, suggesting a specific relationship between PGH2/TxA2 receptor desensitization and AC sensitization. In addition, using alkaline phosphatase, a dephosphorylating enzyme, and the tyrosine kinase inhibitor erbstatin, we examined the role of phosphorylation-dephosphorylation on AC sensitization. Effectively, alkaline phosphatase, which has no effect by itself, enhances the cAMP production triggered by prostacyclin in control but not in desensitized platelets. In contrast, erbstatin failed to modify this synthesis, indicating the non-involvement of tyrosine kinase pathway in this process. Our results indicate that the AC sensitization was mediated by PLC and also suggest the participation of other mechanisms, including phosphorylation-dephosphorylation processes. This specific enzyme sensitization may be relevant for the in vivo modulation of platelet activation, in different thrombotic diseases with an increased TxA2 generation.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Comparative effects of recombinant staphylokinase and streptokinase on platelet aggregation.

Recombinant staphylokinase (RSTA) has been shown to offer promise as a thrombolytic agent. In contrast to streptokinase (SK), few studies have been devoted to possible effects of RSTA on platelets. We have compared the capacity of RSTA and SK to trigger platelet aggregation and to modify ADP (2.5 microM) response in platelet-rich plasma (PRP) of 125 healthy subjects. Thus, exposure of PRP to SK (40 to 50 micrograms/ml) induced platelet aggregation in 6 out of 25 subjects. However, under the same conditions, RSTA failed to induce platelet aggregation in all cases (25 out of 25 subjects). In contrast to RSTA, SK (0.4 to 50 micrograms/ml) greatly reduced ADP-induced platelet aggregation in 12 out of 25 subjects. Preincubation of plasma with SK is associated with a decrease in the fibrinogen concentration. Furthermore, there was a good correlation between SK-induced fibrinogenolysis and SK-induced platelet aggregation defect (r2 = 0.9; p = 0.001). No fibrinogenolysis was observed when different amounts of RSTA (0.4 to 50 micrograms/ml) were incubated in plasma for one min. However, there was a marked decrease in fibrinogen level (about 50%) when the plasma was incubated for five min with a very high concentration of RSTA. SK markedly enhanced the platelet response to ADP in 13 out of 25 subjects. In PRP of 6 out of 25 subjects, SK induces platelet aggregation and potentiates platelet response to ADP, however in PRP of 7 out of 25 subjects, SK caused only the increase of platelet response to ADP. The monoclonal antibody anti-Fc gamma RIIa1, I-3 (2 micrograms/ml), abolished SK-induced platelet aggregation and SK-enhanced ADP-induced platelet aggregation. In all cases (25 out of 25 subjects), RSTA failed to potentiate platelet response to ADP. These findings confirm that RSTA has a lesser fibrinogenolytic ability than SK and suggest its negligible effect on platelet function.

Adenosine Diphosphate↗

Evidence for cAMP-dependent platelet ectoprotein kinase activity that phosphorylates platelet glycoprotein IV (CD36).

The dephosphorylating enzyme alkaline phosphatase, by removing phosphate groups from the external platelet membrane proteins, modulates platelet activation (Hatmi, M., Haye, B., Gavaret, J. M., Vargaftig, B. B., and Jacquemin, C. (1991) Br. J. Pharmacol. 104, 554-558). This observation, together with findings reported by others (Ehrlich, Y. H., Davis, T. B., Bock, E., Kornecki, E., and Lenox, R. H. (1986) Nature 320, 67-70; Dusenbery, K. E., Mendiola, J. R., and Skubitz, K. M. (1988) Biochem. Biophys. Res. Commun. 153, 7-13), indicate the existence of ectoprotein kinase activity on the blood platelet surface. In this study, we demonstrate that washed human platelets phosphorylate the synthetic heptapeptide kemptide in a cAMP-dependent mode. The intensity of the phosphorylation was concentration-dependent for kemptide. In addition, incubation of platelets with [gamma-32P]ATP resulted in a rapid incorporation of [32P] phosphate into proteins at the outer membrane surface that was sensitive to alkaline phosphatase treatment. When cAMP was added to the medium, major phosphorylation of an 88-kDa ectoprotein occurred. Its isoelectric point determined by isoelectric focusing SDS-polyacrylamide gel electrophoresis was around pH 6.2. Phosphorylations of this 88-kDa polypeptide and of the exogenous kemptide substrate were both prevented by the specific protein kinase A inhibitor peptide. When platelets were preincubated with [32P]inorganic phosphate to label intracellular proteins, the protein phosphorylation pattern was different from that obtained with [gamma-32P]ATP, indicating that the latter occurred at the outer surface of the cells. Prostacyclin, which induces the increase of intracellular cAMP levels and, consequently, its liberation into the extracellular medium, increased phosphorylation of both kemptide and platelet 88-kDa polypeptide. The major protein of 88-kDa, which was phosphorylated in the presence of cAMP and external [gamma-32P]ATP, was identified by immunoprecipitation to GPIV (CD36), one of thrombospondin and collagen binding sites on platelets. The phosphorylation of CD36 also occurred in platelet-rich plasma, suggesting a physiological role for this ectoenzyme. In the present study, we clearly demonstrate the presence of an ectoprotein kinase A activity at the surface of intact human platelets, and we revealed its principal endogenous substrate as being CD36.

Blood Platelets↗

Reversible inhibition by protamine of human synovial and rabbit platelet secretory phospholipase A2.

We investigated the effects of protamine on the release and the activity of 14 kDa type II phospholipase A2 (sPLA2). Protamine blocks both release and activity of sPLA2 from thrombin-stimulated platelets in a concentration-dependent manner. Heparin, an anionic sulfate polysaccharide which has a high affinity for this enzyme, has no inhibitory effect on sPLA2 by itself but it is able to reverse the inhibitory effect of protamine. The liberation by thrombin of platelet factor 4, an alpha-granule constituent, unlike to that of ATP stored in dense bodies, was suppressed by protamine. Platelet aggregation, determined in parallel, was not affected by protamine. Also, protamine did not inhibit platelet arachidonic acid liberation, which is mainly produced by cytosolic PLA2. The non-proteinaceous polycationic hexadimethrine and acidic protein casein failed to inhibit platelet sPLA2 activity. By contrast, the basic polypeptides poly(L-arginine) and poly(L-lysine) potently inhibited sPLA2 activity, indicating the important role of basic amino acids in the inhibitory effect evoked by protamine. Activities of the human recombinant sPLA2 and the unpurified synovial enzyme of patients with rheumatoid arthritis were also inhibited by the same range of protamine, poly(L-arginine) and poly(L-lysine) concentrations. Our results demonstrate that protamine, unlike heparin, blocks platelet sPLA2 release and exerts a reversible inhibitory effect on its activity, probably through the interaction of basic amino acids with the enzyme.

Animals↗

Plasma from patients exposed to ischemia reperfusion contains clastogenic factors and stimulates the chemiluminescence response of normal leukocytes.

Clastogenic factors (CFs) are released by cells exposed to superoxide radicals and are found in various situations of oxidative stress. Certain of their components stimulate further superoxide production by competent cells, as shown with cytochrome c assay in previous work. In the present study, we report CF formation after ischemia reperfusion in patients undergoing coronary bypass surgery. Plasma ultrafiltrates, collected 20 min after reperfusion, had clastogenic properties in contrast to those collected before ischemia. We also show that the luminol-enhanced chemiluminescence response of neutrophils from healthy persons is increased when these cells are exposed to CF-containing postreperfusion samples from patients. Light emission was reduced to control values in the presence of superoxide dismutase. The burst of oxyradicals upon reperfusion is probably the initiating event of CF formation, which in turn leads to further oxyradical generation. This amplification process may explain why detectable levels of CF need a delay of at least 10 min. The activated state of neutrophils in ischemia reperfusion is at once a consequence and a source of CFs. Individual variation in the persistence of this clastogenic and leukocyte-activating material was observed. Therefore, antioxidants for prevention of ischemia reperfusion injury should be continued during the postoperative course.

Antioxidants↗

Convulxin-induced platelet aggregation is accompanied by a powerful activation of the phospholipase C pathway.

Platelet aggregation and stimulation of phosphoinositide-specific phospholipase C (PLC) by thrombin and by convulxin (Cvx), a non-enzymic snake venom glycoprotein, were compared. Cvx-stimulated production of inositol phosphates by washed platelets was independent of the cyclo-oxygenase pathway, formation of platelet-activating factor and ADP release, but prostacyclin (prostaglandin I2), a stimulator of cyclic AMP formation, suppressed its effects on platelet and PLC activation. Kinetic analysis showed that inositol 1,4,5-trisphosphate formation reached its maximal value 15 s after platelet stimulation with Cvx and persisted for at least 5 min. Neomycin sulphate (10 mM), which complexes phosphatidylinositol 4-phosphate and phosphatidyl-inositol 4,5-bisphosphate, decreased the production of inositol phosphates, partially prevented platelet aggregation induced by a high concentration of Cvx (10 nM) and abolished both platelet aggregation and inositol phosphate formation induced by thrombin (2 units/ml) and by a stable prostaglandin H2 analogue, U46619 (1 microM). In contrast with neomycin sulphate, Na2SO4 had no significant effect against all agonists tested. It is concluded that platelet activation by Cvx is partially mediated by PLC and involves other mechanisms as well.

Animals↗

Dissociation between the phospholipases C and A2 activities in stimulated platelets and their involvement in the arachidonic acid liberation.

In previous work we have demonstrated that platelets depleted from secretory phospholipase A2 (sPLA2) produced similar amounts of thromboxane (Tx)B2 as control platelets upon stimulation by thrombin. However, since depletion of sPLA2 was not total, this sole finding only suggested the non-involvement of sPLA2 in arachidonic acid release. In the present study we provide further evidence for the non-involvement of sPLA2 in arachidonic acid liberation during platelet activation. Thus, rabbit platelets exposed to thrombin secreted sPLA2, released free arachidonic acid and formed TxB2 and inositol phosphates. In contrast, U46619, a stable prostaglandin (PG)H2 analogue, activates phospholipase C (PLC) and induces release of sPLA2 without TXB2 generation nor arachidonic acid liberation. At each concentration tested of both agonists, stimulation of sPLA2 activity paralleled the production of inositol phosphates. These data suggest that sPLA2 is dependent on phosphoinositide hydrolysis and on the release reaction and that it is not involved in the liberation of arachidonic acid from stimulated platelets. In addition, a dissociation was observed between sPLA2 and the enzyme involved in the arachidonic acid mobilization, suggesting that the liberation of this fatty acid from membrane phospholipids was mediated by cytosolic phospholipase A2 (cPLA2). Finally, PLC does not play a major role in arachidonic acid liberation, since U46619, which induced the breakdown of inositol phospholipids, failed to release arachidonic acid. In confirmation, neomycin, which inhibits PLC activity, failed to inhibit ATP, sPLA2 and arachidonic acid release upon stimulation of platelets by fluoroaluminate. These data demonstrate that sPLA2 is not involved in the arachidonic acid release by stimulated platelets and indicate that the activations of PLC, sPLA2 and cPLA2 are independent events.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Secretory phospholipase A2 is not required for arachidonic acid liberation during platelet activation.

The subcellular localization of secretory phospholipase A2 (sPLA2) and cytosolic phospholipase A2 (cPLA2) in resting and activated platelets, and their involvement in arachidonic acid liberation during platelet activation, were studied. The amounts of sPLA2 and cPLA2 recovered were not modified during platelet activation. sPLA2 was mainly associated with the organelles of resting platelets (71% of total activity) and was released into the extracellular medium during cell activation (60% of total activity), whereas the majority of cPLA2 was localized in the cytosol of resting and activated platelets. The secretion of sPLA2 correlated with the release of ATP. sPLA2-depleted platelets aggregated as much as control platelets and produced similar amounts of thromboxane B2 upon thrombin activation. These results indicate that sPLA2 is not involved in the liberation of arachidonic acid during platelet activation.

Adenosine Triphosphate↗

Reduction by arachidonic acid of prostaglandin I2-induced cyclic AMP formation. Involvement of prostaglandins E2 and F2 alpha.

Arachidonic acid reverses the increase in cyclic AMP levels of washed human platelets exposed to prostaglandin (PG)I2, under conditions where the PGH2 analogue U46619 is ineffective. This effect of arachidonic acid was inhibited by aspirin, a cyclooxygenase inhibitor, but not by the thromboxane (Tx) synthase inhibitor Ridogrel, which induces, by inhibiting the conversion of PGH2 into TxA2, an overproduction of PGE2, PGD2 and PGF2 alpha. Addition of PGE2 or PGF2 alpha, which share a receptor with PGI2, to washed human platelets also induced a decrease in cyclic AMP levels, but PGD2, which interacts with a different receptor, had no effect. Thus neither PGD2, PGG2, PGH2, TxA2 nor TxB2 formed from arachidonic acid via the cyclooxygenase pathway is involved in the decrease in cyclic AMP levels. These findings were confirmed using forskolin, a diterpene from the labdane family, which enhanced the formation of cyclic AMP synergistically with the PGs. Also, arachidonic acid, unlike U46619, is able to reverse the inhibition of platelet aggregation by PGI2 after a lag phase of about 4 min. Our data indicate that arachidonic acid decreased cyclic AMP levels through its cyclooxygenase metabolites PGE2 and PGF2 alpha probably interacting competitively with the receptor of PGI2. In addition, intracellular cyclic AMP levels and the degree of aggregation of platelets by arachidonic acid seem to be inversely correlated.

Arachidonic Acid↗

Compound PCA-4248 interferes with bronchopulmonary anaphylaxis and with in vitro hyperresponsiveness to platelet-activating factor.

The intravenous (i.v.) or oral administration of the platelet-activating factor (PAF) antagonist, PCA-4248, to guinea-pigs blocked selectively the bronchoconstriction induced by PAF, as well as the accompanying thrombocytopenia and leucopenia. In addition, PCA-4248 i.v. or intratracheal (i.t.) administration blocked the bronchoconstriction caused by the i.t. instillation of PAF. As in the case of other PAF antagonists, bronchoconstriction caused by the i.t. instillation of antigen was only inhibited by PCA-4248 in guinea-pigs that did not receive a booster injection of antigen during sensitization whereas the booster injection of antigen made anaphylactic bronchoconstriction resistant to the compound. In vitro, when lungs from non-sensitized guinea-pigs were perfused with Krebs-bovine serum albumin (BSA) solution supplemented with PCA-4248, bronchoconstriction and the formation of thromboxane A2 by PAF were blocked. In this in vitro model of perfused lungs, active sensitization with a booster injection of antigen leads to bronchopulmonary hyperresponsiveness to PAF and failure of other PAF antagonists to inhibit the effects of PAF itself. Surprisingly, in lungs isolated from actively sensitized and boosted guinea-pigs, PCA-4248 blocked the effects of PAF, indicating that this compound possesses additional original properties in this model.

Anaphylaxis↗