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Biomedical subjects

S Jancar

Publications and source records attributed to S Jancar.

At least 55 records · Page 3Linked to original sources

Inhibition of Ehrlich ascites tumor in vivo by PAF-antagonists.

Several lines of evidence support that PAF modulates the inflammatory and immune responses, and that tumors may inhibit both these processes. In the present study we analysed the effect of PAF antagonists on the growth of Ehrlich Ascites Tumor (EAT) in vivo. Mice were inoculated intraperitoneally with 1 x 10(3) EAT cells and the tumor growth evaluated by counting the number of peritoneal cells, 1,6 and 10 days after tumor implantation. BN 52021 was administered intraperitoneally, intravenously or subcutaneously once or twice a day, at 1.0, 2.5, 5.0 and 20.0 mg/kg. Control animals received 0.1 ml of the vehicle in the same schedule. It was found that i.p. and i.v. administration of BN 52021 (5 mg/kg, twice a day) significantly inhibited EAT growth (80.8% and 56.0% respectively). Other routes and doses were less effective. Another PAF antagonist, SRI 63441 (5 mg/kg, i.p., twice a day) also inhibited EAT growth (80.4%). The BN 52021 added to EAT cells in culture, at concentration of 10(-3) and 10(-4) M, did not affect the viability and proliferation of tumors cells. In an attempt to understand the mechanism of this inhibition, we analyzed the peritoneal macrophages for spreading ability and H2O2 release. It was found that 24 h after tumor implantation there was an increase in the spreading ability of peritoneal macrophages (75%) and that, as the tumor grew, the spreading index fell to control levels ( less than 10%). (5 mg/kg/twice a day) the spreading remained elevated (50-60%) at all the times examined. Release of H2O2, measured by horseradish peroxidase-phenol red oxidation, was below detectable levels throughout tumor growth.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Cerebral arteries can generate 5- and 15-hydroxyeicosatetraenoic acid from arachidonic acid.

Products of the lipoxygenase pathway have been implicated in the development of the cerebrovascular spasm that arises after subarachnoid hemorrhage. In particular the hydroperoxyeicosatetranenoic acids (HPETEs), which are unstable and break down rapidly to the corresponding 5-hydroxy acids (HETEs), are vasoconstrictor agents that mimic some aspects of cerebrovascular spasm. It is not, however, well established whether segments of cerebral artery can manufacture these products. We have studied the lipoxygenase product profile of cerebral arteries stimulated with arachidonic acid. Rings of bovine cerebral arteries were incubated in Krebs solution containing arachidonic acid. The lipoxygenase products were studied using high performance liquid chromatography. The largest peaks had the retention times of 5- and 15-HETEs, and the identity of these peaks was confirmed using specific radioimmunoassays. Stimulation with arachidonic acid resulted in a time- and dose-dependent increase in the formation of both HETEs, with 15-HETE being most abundant. The release of both HETEs was markedly reduced in the presence of AA-861, an inhibitor of lipoxygenase, but not with the cyclooxygenase inhibitor indomethacin. These data are thus consistent with our previous suggestion that the contractile activity of arachidonic acid in cerebral arteries arises, at least in part, from HPETE formation and with a possible role for these compounds in cerebral vasospasm.

Animals↗

Comparative study of adjuvant induced arthritis in susceptible and resistant strains of rats. III. Analysis of lymphocyte subpopulations.

The subpopulations of lymphocytes (W3/25+ and OX8+) in the blood, spleen and lymph nodes were analyzed comparatively in rats susceptible (Holtzman) and resistant (Buffalo) to the development of adjuvant induced arthritis (AIA). In naive rats, it was found that the ratio (T helper/T suppressor) was significantly higher in Holtzman compared to Buffalo rats suggesting that the susceptible rats possess less suppressor cells than the resistant. Following induction of AIA (7 and 14 days) the ratio T helper/T suppressor was not significantly different in either strain. When the resistant strain was treated with 25 mg/kg of cyclophosphamide, the T suppressor cells were significantly reduced and this was followed by a strong potentiation of the AIA. Our data suggest that susceptibility to AIA is related to alterations in the T suppressor cell subset.

Animals↗

Comparative study of adjuvant induced arthritis in susceptible and resistant strains of rats. I. Effect of cyclophosphamide.

Injection of complete Freund's adjuvant into one paw of Holtzman rats induced an inflammatory response in the injected site (primary lesion) and from the 10th day on, severe polyarthritis developed (secondary lesions). In this susceptible strain, cyclophosphamide dose dependently reduced the intensity of the primary and secondary lesions. In contrast, in Buffalo rats, which are considered as resistant, cyclophosphamide in the dose of 25 mg/kg significantly potentiated the secondary lesions. Higher doses (200 and 300 mg/kg) also reduced the intensity of the lesions in this strain. Our data suggest that the development of adjuvant induced arthritis is controlled by a cyclophosphamide sensitive suppressor cell population.

Animals↗

Comparative study of adjuvant induced arthritis in susceptible and resistant strains of rats. II. Effect of oral administration of BCG and PPD.

In rats of the Holtzman strain, susceptible to the development of adjuvant induced arthritis (AIA), oral administration of BCG significantly inhibited the development of the disease. Oral treatment with purified protein derivative (PPD) had no effect. In the resistant Buffalo rats, however, oral administration of BCG and PPD enhanced the lesions. Since oral administration of antigens has been described to induce suppressor cells, our results suggest that the development of AIA is controlled by suppressor mechanisms, which fail to be activated in the susceptible strain, but are stimulated by the oral administration of BCG.

Administration, Oral↗

Release of eicosanoids in rat peritoneal cavity during the Arthus reaction. Effect of the PAF-antagonist BN-52021 and indomethacin.

An Arthus reaction was induced in the rat peritoneal cavity. The inflammatory exudates were collected 10 min after induction of the reaction and analysed for the presence of prostaglandin E2 (PGE2) and thromboxane B2 (TXB2) by enzyme immunoassays (EIA), and of leukotriene B4 (LTB4) by radioimmunoassay. Our results showed that control release (CONT) of eicosanoids in the peritoneal cavity averaged 2.3 ng/ml for TXB2, 0.21 ng/ml for PGE2 and 18 pg/ml for LTB4. Following antigen challenge, the levels of TXB2, PGE2 and LTB4 in the peritoneal cavity increased to 17.0 ng/ml, 0.41 ng/ml and 49.0 pg/ml, respectively. Indomethacin totally inhibited the release of PGE2 and TXB2 whereas it increased by 326% the release of LTB4. The PAF antagonist, BN-52021 significantly inhibited (around 40%) the release of LTB4 in rat peritoneal cavity, increased the release of PGE2, and did not affect the release of TXB2. These results clearly suggest a mediatory role for both cyclooxygenase and lipoxygenase products in Arthus reaction and provide evidence that PAF is also involved in complex interactions with the eicosanoids.

Animals↗

Release of eicosanoids in rat peritoneal cavity stimulated with platelet-activating factor (PAF). Effect of the PAF-antagonist BN-52021.

Platelet activating factor (PAF; 10 micrograms) was injected in the peritoneal cavity of rats in the absence or presence of the PAF antagonist BN-52021 (5 mg/kg). Thirty min later, the peritoneal cavity was washed with 3 ml of saline, the fluid was collected and the concentrations of selected eicosanoids were measured using novel enzyme immunoassays. PAF increased by 2.9, 2.8 and 1.7 fold the levels of thromboxane B2, prostaglandin E2 and leukotriene B4 respectively in the peritoneal fluid. The stimulatory effects of PAF was reduced by 42, 51, and 86% for thromboxane B2, prostaglandin E2 and leukotriene B4 respectively by the specific PAF antagonist. These results confirm the presence of specific PAF receptors in tissues and/or cells of rat peritoneal cavity and underline the complex interactions between PAF and eicosanoids.

Animals↗

Paf-induced release of spasmogens from guinea-pig lungs.

1. The injection of platelet activating factor (Paf; 250 ng), leukotriene B4 (LTB4; 50 ng) and leukotriene D4 (LTD4; 10 ng) elicited contractions of strips of guinea-pig trachea, bronchus and lung parenchyma. 2. When the effluent of perfused guinea-pig lungs was superfused over strips of guinea-pig trachea, bronchus and parenchyma, the intra-arterial injection of Paf (250 ng) caused the release of spasmogen(s) which contracted all three tissues. 3. The infusion of indomethacin (10 micrograms ml-1) into the pulmonary artery and over the assay tissues inhibited the responses of the tissues to the effluent of the lungs stimulated by Paf (250 ng) and LTB4 (50 ng). However, treating only the assay tissues with indomethacin (10 micrograms ml-1) did not block the contractile responses to the effluent of the lungs stimulated with LTB4 or Paf. stimulated with Paf. 4. Pretreatment of the lungs with indomethacin (10 micrograms ml-1) or aspirin (30 micrograms ml-1) for 30 min, washing them out and suspending them over the assay tissues did not block the release of spasmogens elicited by Paf but appeared to inhibit the release of cyclo-oxygenase products. 5. The infusion of two lipoxygenase inhibitors, nordihydroguaiaretic acid (NDGA; 1 microgram ml-1) and L-655,240 (1 microgram ml-1), into the pulmonary artery completely blocked the release of spasmogen(s) from the perfused lungs. 6. The slow reacting substance of anaphylaxis (SRS-A) antagonist, FPL-55712 (10 ng ml-1), did not block the responses of the tissues to the spasmogen(s) release by Paf. 7. The infusion of the Paf antagonist BN-52021 (30 micrograms ml-1) into the pulmonary artery completely abolished the release of spasmogen(s) induced by Paf. 8. These data suggest that a lipoxygenase product, possibly LTB4, could be responsible for the spasmogenic activity released by the lungs following Paf stimulation. Cyclo-oxygenase products released following Paf stimulation appear to result from the initial LTB4 generation.

Animals↗

Involvement of eicosanoids and PAF in immune-complex alveolitis.

An immune-complex-mediated hypersensitivity reaction induced in the rat lung was followed by release of the eicosanoids thromboxane, prostaglandin E2 and leukotriene B4 into the bronchoalveolar space. Concomitantly, there was a decrease in the number of circulating platelets. The thrombocytopenia was inhibited by a cyclo-oxygenase inhibitor (indomethacin), a platelet activating factor (PAF) antagonist (BN-52021) and an inhibitor of thromboxane (econazole), but was not affected by a lipoxygenase inhibitor (NDGA). These results suggest the involvement of eicosanoids and PAF in the immune complex hypersensitivity reaction in the rat lung and indicate the occurrence of interactions between PAF and thromboxane.

Alveolitis, Extrinsic Allergic↗

Slow-reacting substance of anaphylaxis (SRS-A) activity in the synovial fluids of rabbits with antigen-induced arthritis.

Synovial fluids from rabbits with antigen-induced arthritis were investigated for the presence of slow-reacting substance of anaphylaxis (SRS-A) using biological assay in guinea-pig ileum. Inflamed joints from rabbits sacrificed within eight hours of the articular challenge disclosed SRS-A activity, indicating that peptidic leukotrienes may also be important in the physiopathology of acute articular inflammatory processes.

Animals↗

Effect of PAF on selected smooth muscle preparations.

The myotropic activity of PAF (Platelet activating factor) was studied on selected smooth muscle preparations from the rat and the guinea-pig, and compared with the responses to histamine, acetylcholine, norepinephrine, leukotriene D4 (LTD4), prostaglandin (PG) E2 and F2 alpha. Our results showed that nanogram quantities of PAF induced strong contractile responses. Tachyphylaxis appeared as a common feature of PAF activity. The responses were usually slow in onset and sustained. Leukotriene D4 and prostaglandin E2 also contracted most tissues used except the lung tissues where prostaglandin E2 induced a relaxation.

Animals↗

PAF increases vascular permeability in selected tissues: effect of BN-52021 and L-655,240.

The effect of the potent inflammatory mediator, platelet activating factor (PAF) was studied on the vascular permeability of selected rat tissues using the extravasation of Evans blue dye (EB) as a marker. EB (20 mg/kg) was injected in the caudal vein together with increasing doses of PAF (0.1, 1.0 and 5.0 micrograms/kg). The animals were killed and the dye was extracted in selected organs using formamide (4 ml/g wet weight tissues) and the content was expressed as EB micrograms/g dry weight. Extravasation of EB varied markedly from one tissue to another and increased as a function of time (from 0 to 60 min). PAF (5.0 micrograms/kg) increased the pancreas and duodenum vascular permeability by 15 and 5 fold respectively. At the doses of 0.1 and 1.0 microgram/kg, PAF induced a slight increase (P less than 0.01) of the vascular permeability of the heart 5 min after the injection. The PAF antagonist BN-52021 (2 and 10 mg/kg) produced a dose-dependent inhibition of the PAF effects on the pancreas, heart and duodenum. Maximum inhibition (approximately 100%) was achieved at the dose of 10 mg/kg. This antagonist given in the absence or the presence of PAF reduced the lung plasma extravasation below control levels. A thromboxane antagonist, L-655,240 (1.0 and 5.0 mg/kg) also inhibited PAF-induced increases in vascular permeability in heart, duodenum and pancreas. It also reduced below control levels the EB extravasation in kidneys, spleen and lungs. Maximum inhibition (50% for the duodenum, and 40% for the pancreas) was achieved at the dose of 5.0 mg/kg.

Animals↗

Immune complex induced pancreatitis: effect of BN 52021, a selective antagonist of platelet-activating factor.

A model of acute pancreatitis was developed by induction of an immune complex mediated hypersensitivity reaction in rats. This acute inflammatory reaction was characterized by intense interstitial edema, neutrophil infiltration and margination, and congestion of small vessels whereas serum amylase levels remained unchanged. Microscopic examination of the pancreatic tissue revealed the presence of immune complex deposition around blood vessels and ducts. Vascular permeability, as measured by Evan's blue extravasation increased by 6 fold. In addition, circulating platelets dropped to 50% of normal levels. Injection of platelet-activating factor (PAF) in the peritoneal cavity of rats also produced an increase in vascular permeability in the pancreas. A selective PAF-antagonist, BN 52021 reduced by approximately 50% the increase in vascular permeability produced by immune complex in the pancreas as well as that elicited by intraperitoneal injection of PAF. These results suggest that PAF plays a role in the pathological manifestations of immune complex-mediated pancreatitis.

Animals↗

Mechanism of action of platelet-activating factor on guinea-pig lung parenchyma strips.

The contribution of thromboxane A2 to platelet-activating factor (PAF)induced contraction of guinea-pig lung parenchyma strips (GPLPS) was investigated using an experimental design that allowed us to record the contractions of the tissues in parallel with the determination of thromboxane B2 (TXB2) levels in the organ baths by enzyme immunoassay. It was found that the first injection of PAF induced the contraction of GPLPS and the release of TXB2. Following subsequent additions of PAF to the same tissue, the contractile response was abolished but TXB2 levels were not significantly reduced. Pretreatment of the tissue with the thromboxane synthetase inhibitor OKY-046 (3.5, 170, and 350 microM) strongly inhibited the release of TXB2 but had no effect on the contraction of the tissues induced by PAF. The mechanism of PAF-induced contraction of GPLPS was further investigated using several drugs that interfere with arachidonic acid metabolism. It was found that pretreatment of the tissues with the cyclooxygenase and thromboxane synthetase inhibitors indomethacin (2.8, 28, and 56 microM) and OKY-046 (170 microM) or with the thromboxane antagonist SKF-88046 (1.25 and 12.5 microM) had no significant effect on the contractile response to PAF. The compound L-655,240 (2.5, 25, and 50 microM), which acts simultaneously as an antagonist of thromboxane and inhibitor of lipoxygenase, significantly reduced GPLPS contractions induced by PAF. Another lipoxygenase inhibitor, nordihydroguaiaretic acid (33 microM), and the inhibitor of both pathways of arachidonic acid metabolism, BW775c (110 microM), both reduced PAF-induced contractions of GPLPS.(ABSTRACT TRUNCATED AT 250 WORDS)

4,5-Dihydro-1-(3-(trifluoromethyl)phenyl)-1H-pyraz↗

Mechanisms of arachidonic acid-induced contractions of canine cerebral arteries.

The effects of arachidonic acid in cerebral blood vessels has been examined using rings of canine cerebral arteries. Arachidonic acid produced dose-dependent contractions of this preparation even after mechanical removal of the endothelium. The contractions were not blocked by indomethacin or acetylsalicylic acid, both of which inhibit cyclooxygenase, but were inhibited by nordihydroguaiaretic acid which is a lipoxygenase inhibitor, BW 755c which blocks both pathways, and FPL 55712 which is an antagonist at leukotriene receptors. These data imply that arachidonic acid-induced contractions are mediated by products of the lipoxygenase pathway. Leukotrienes and cyclooxygenase products are generated by this preparation as shown by HPLC and radioimmunoassay and both LTC4 and LTD4 produce contractions in cerebral arteries lending further evidence in support of this suggestion.

Animals↗

Comparative effects of platelet activating factor, leukotriene D4 and histamine on guinea pig trachea, bronchus and lung parenchyma.

The myotropic effect of platelet activating factor (PAF), leukotriene D4 (LTD4) and histamine were compared on guinea pig pulmonary tissues. The initial administration of PAF induced a contraction of strips of trachea, bronchus and lung parenchyma. However subsequent injections were characterized by relaxation of trachea and bronchus and a highly reduced (if any) contraction of the parenchyma. The three tissues of the guinea pig respiratory system contracted strongly to leukotriene D4 and histamine. Indomethacin blocked PAF-induced relaxation of the trachea and bronchus and reduced the contraction of the lung parenchyma. The injection of PAF in the pulmonary circulation stimulated the release of substance(s) causing the contraction of the trachea, bronchus and parenchyma. This study suggests that PAF is not a direct agonist of bronchoconstriction.

Airway Resistance↗

Interactions of arachidonic acid metabolites and platelet activating factor and mechanism of action in hypersensitivity reactions.

1. Sensitized guinea pig lungs release substantial amounts of prostaglandin E2, 6-keto-prostaglandin F1 alpha, thromboxane B2 and leukotrienes B4 and D4 upon challenge with the specific antigen. 2. A specific Platelet Activating Factor (PAF) antagonist (BN-52021) significantly inhibited the release of these mediators from anaphylactic lungs, suggesting the existence of interactions between PAF and eicosanoids. 3. The injection of PAF into unsensitized guinea pig lungs induced the release of prostaglandin E2, thromboxane B2 and leukotrienes B4 and D4 as well as spasmogens having contractile effects on the trachea, bronchus and parenchyma strips. 4. Our studies on the mechanism of action of PAF suggest that the actions of PAF are mediated by leukotriene B4 which in turn release thromboxane A2. Recent results suggest that similar interactions between PAF and eicosanoids are likely in immune-complex hypersensitivity reaction in the rat.

Animals↗