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Biomedical subjects

F P Nijkamp

Publications and source records attributed to F P Nijkamp.

At least 19 recordsLinked to original sources

LCB 2183 inhibits tracheal hyperreactivity and pulmonary inflammation in mouse airways.

The pulmonary delayed-type hypersensitivity (DTH) reaction induced by picryl chloride is characterized by enhanced albumin concentration in the airway tissue in the early phase (2 h after challenge with picryl sulphonic acid). During the later phase (48 h after the challenge) enhanced tracheal reactivity to carbachol in vitro and cellular (mononuclear and polymorphonuclear leukocytes) accumulation into the airway tissue in vivo are prominent features. In this present study, the effects of a novel drug, LCB 2183, were examined in the pulmonary DTH reaction. LCB 2183 (25 mg/kg twice daily intragastric gavage) failed to inhibit the enhanced albumin accumulation in the early phase of this response. In contrast, LCB 2183 abolished the tracheal hyperreactivity and the leukocyte accumulation in the airways of picryl chloride-sensitized mice 48 h after the challenge. These results demonstrate that LCB 2183 could be effective in the treatment of airway hyperreactivity and pulmonary inflammation.

Albumins

The linoleic acid metabolite 13-HODE modulates degranulation of human polymorphonuclear leukocytes.

The effect of the linoleic acid metabolite 13-hydroxyoctadecadienoic acid human polymorphonuclear leukocytes (PMNs) was investigated by measuring the expression of CD11b and CD67 on the plasma membrane. 13-HODE (5 microM) by itself induced degranulation of PMNs, but to a lesser extent as compared to PAF and fMLP. In addition, 13-HODE was found to inhibit the PAF-induced degranulation whereas an additive effect on the fMLP-induced PMNs degranulation was observed. These results indicate that 13-HODE can play a modulatory role in degranulation of PMNs.

Antigens, CD

Adhesion molecules: a new target for immunoliposome-mediated drug delivery.

The anti-ICAM-1 monoclonal antibody F10.2 was conjugated to liposomes to target to cells expressing the cell adhesion molecule ICAM-1. We demonstrate that F10.2 immunoliposomes bind to human bronchial epithelial cells (BEAS-2B) and human umbilical vein endothelial cells (HUVEC) in a specific, dose- and time-dependent manner. It appears that the degree of ICAM-1 expression is the limiting factor in the degree of immunoliposome binding to the cells. These results are a first step in the strategy for specific drug delivery to target sites characterised by increased expression of adhesion molecules.

Antibodies, Monoclonal

13-Hydroxy-linoleic acid induces airway hyperresponsiveness to histamine and methacholine in guinea pigs in vivo.

The influence of 13-hydroxy-linoleic acid (13-HODE) on the pulmonary resistance and dynamic compliance of guinea pigs in vivo was determined. Intravenously administered histamine and methacholine caused dose-dependent increases in pulmonary resistance and dose-dependent decreases in dynamic compliance in anesthetized, spontaneously breathing guinea pigs. Inhalation of an aerosol containing 13-HODE (10 mumol/L) enhanced the increases in pulmonary resistance observed after administration of histamine or methacholine when compared with the respective control animals. The effect of 13-HODE on the increase in pulmonary resistance after administration of histamine was dose-dependent. An enhancement in the pulmonary resistance was already measured after treatment of guinea pigs with aerosols of solutions containing 0.1 mumol/L 13-HODE when compared with that of control animals. In contrast, the changes in dynamic compliance were not affected by 13-HODE. These results indicate that 13-HODE may play an important role in the induction of airway hyperresponsiveness in vivo when it is produced or released in significant amounts in the airways.

Airway Resistance

Eosinophil infiltration precedes development of airway hyperreactivity and mucosal exudation after intranasal administration of interleukin-5 to mice.

Recently, we demonstrated that antibody to interleukin-5 (IL-5) prevents the infiltration of eosinophils in the respiratory airways and the development of bronchial hyperreactivity in an animal model of allergic asthma. In this study we investigated the influence of long-term intranasal administration of IL-5 on airway responsiveness in vitro, the infiltration of inflammatory leukocytes, and mucosal exudation. Mice (BALB/c) received 1 microgram of recombinant human IL-5 in 30 microliters of saline solution or vehicle alone twice a day for 1, 3, and 7 days. At 3 and 7 days after IL-5 administration, the number of bronchoalveolar lavage eosinophils increased approximately fourfold and sixfold, respectively. Blood eosinophil numbers showed a similar increase. In addition, 7 days after IL-5 treatment, total lung eosinophil peroxidase activity was significantly increased by 170% as compared with controls. The maximal responsiveness of the trachea in vitro to methacholine was significantly increased by 34%, as compared with controls, only at 7 days after IL-5 administration. Furthermore, mucosal exudation was also only increased significantly at 7 days after IL-5 administration. It can be concluded that the IL-5-induced eosinophil infiltration precedes the development of airway hyperreactivity and mucosal exudation.

Administration, Intranasal

Delayed-type hypersensitivity-induced increase in vascular permeability in the mouse small intestine: inhibition by depletion of sensory neuropeptides and NK1 receptor blockade.

1. This study investigates the effects of capsaicin-induced depletion of sensory neuropeptides and of neurokinin1 (NK1) receptor blockade on delayed-type hypersensitivity (DTH)-induced changes of vascular permeability in the small intestine of the mouse. 2. The DTH reaction in the small intestine was elicited by dinitrofluorobenzene (DNFB)-contact sensitization followed by oral dinitrobenzene sulphonic acid (DNBS) challenge. To assess vascular leakage the accumulation of the plasma marker, Evans blue (EB), was measured 2, 24 and 48 h after the challenge. 3. The small intestinal DTH reaction was characterized by a significant increase in vascular permeability 24 h after the challenge of previously sensitized mice when compared to vehicle-sensitized mice (P < 0.05, ANOVA). Capsaicin-induced depletion of sensory neuropeptides, two weeks before the sensitization, completely inhibited the DTH-induced increase in small intestinal vascular permeability at 24 h (P < 0.05, ANOVA). Vehicle/control: 108.2 +/- 8.6 ng EB mg-1 dry weight; vehicle/DTH 207.8 +/- 25.1 ng EB mg-1 dry weight; capsaicin/control: 65.8 +/- 11.9 ng EB mg-1 dry weight; capsaicin/DTH: 84.3 +/- 7.6 ng EB mg-1 dry weight. 4. The tachykinins, substance P and neurokinin A (1.5 to 50 x 10(-11) mol per mouse, i.v.), induced an increase in vascular leakage in the small intestine of naive mice. The specific NK1 receptor antagonist, RP67580 (10(-9) mol per mouse, i.v.) was the most effective in reducing the substance P-induced plasma extravasation when compared with other NK receptor antagonists, FK224 and FK888. 5. Treatment of DNFB-sensitized mice with RP67580 (10-9 mol per mouse, i.v.) immediately before and 1 h after the DNBS challenge resulted in a significant reduction of the DTH-induced increase in vascular permeability at 24 h (vehicle/control: 107.5 +/- 8.8 ng EB mg-1 dry weight; RP67580/control:95.4 +/- 5.4 ng EB mg-1 dry weight; vehicle/DTH: 206.6 +/- 22.6 ng EB mg-1 dry weight; RP67580/DTH:132.6 +/- 13.6 ng EB mg-1 dry weight, P<0.05, ANOVA).6. These results suggest that sensory nerves are involved in the development of small intestinal DTH reactions in the mouse. NK1 receptors could play an important role in the initiation of the DTH-induced changes in vascular leakage.

Animals

Endogenous nitric oxide modulation of potassium-induced changes in guinea-pig airway tone.

1. An experimental set up is used whereby the serosal (out)side or mucosal (in)side of the guinea-pig isolated tracheal tube can be stimulated selectively with drugs and reactivity measured. 2. Potassium induces a concentration-dependent (5-70 mM) monophasic contraction of tracheal tubes when added on the outside. In contrast, on the inside, potassium induces a concentration-dependent relaxation at low concentrations (5-40 mM) which was reversed into a contraction up to approximately basal tone at higher concentrations (50-70 mM). 3. Epithelium denudation reversed the potassium-induced relaxation into a contraction. Interestingly, in the 'half' epithelium-denuded trachea the contractions were significantly (P < 0.01) reduced by 46% compared to complete epithelium-denuded tissues. 4. Incubation with the nitric oxide (NO) synthase inhibitor N omega-nitro-L-arginine methyl ester (L-NAME, 120 microM) for 30 min on the inside of the tracheal tube completely prevented the relaxation. However, L-NAME did not reverse the potassium-induced relaxation into a contraction. This indicates that potassium does not penetrate through the epithelial layer. 5. It is concluded that depolarization of smooth muscle cells leads to a monophasic contraction and that depolarization of the epithelium leads to a relaxation of tracheal smooth muscle. The epithelial layer has an important barrier function and can release relaxing factors like NO.

Animals

Potentiation by viral respiratory infection of ovalbumin-induced guinea-pig tracheal hyperresponsiveness: role for tachykinins.

1. We investigated whether virus-induced airway hyperresponsiveness in guinea-pigs could be modulated by pretreatment with capsaicin and whether viral respiratory infections could potentiate ovalbumin-aerosol-induced tracheal hyperresponsiveness. 2. Animals were inoculated intratracheally with bovine parainfluenza-3 virus or control medium 7 days after treatment with capsaicin (50 mg kg-1, s.c.). Four days after inoculation, tracheal contractions were measured to increasing concentrations of substance P, histamine and the cholinoceptor agonist, arecoline. 3. In tracheae from virus-infected guinea-pigs, contractions in response to substance P, histamine and arecoline were significantly enhanced (P < 0.01) by 144%, 46% and 77%, respectively. Capsaicin pretreatment inhibited the hyperresponsiveness to substance P partly (62%) and to histamine and arecoline completely. 4. In another series of experiments animals were first sensitized with ovalbumin (20 mg kg-1, i.p.). After 14 days animals were exposed to either saline or ovalbumin aerosols for 8 days. After 4 aerosol exposures (4 days) animals were inoculated with either parainfluenza-3 virus or control medium. One day after the last ovalbumin aerosol, tracheal contraction in response to increasing concentrations of substance P, histamine and arecoline was measured. 5. Tracheae from ovalbumin-aerosol-exposed control inoculated animals showed a similar degree of airway hyperresponsiveness to saline-aerosol-exposed virus-treated guinea-pigs. Virus inoculation of ovalbumin-treated animals significantly potentiated the tracheal contractions to substance P compared to either of the treatments alone. The contractions in response to histamine and arecoline were only slightly enhanced. 6. In conclusion, sensory nerves and/or tachykinins are involved in virus-induced airway hyperresponsivenessin guinea-pigs and viral respiratory infections can potentiate the increase in tracheal responsiveness to bronchoconstrictor agonists after ovalbumin exposure.

Animals

Antibody to interleukin-5 inhibits virus-induced airway hyperresponsiveness to histamine in guinea pigs.

In humans, respiratory viral infections lead to increased airway responsiveness and exacerbations of asthma. In the present study, the role of interleukin-5 (IL-5) in virus-induced airway hyperresponsiveness and inflammation was examined in guinea pigs. In animals treated with control antibody, parainfluenza-3 virus significantly potentiated (219%) the histamine-induced increase in lung resistance compared with vehicle treatment. In addition, viral infection significantly increased (130 to 450%) the responsiveness of isolated tracheal segments to histamine in animals treated with control antibody. In guinea pigs treated with control antibody, the numbers of eosinophils (226%), neutrophils (1,380%), and monocytes (626%) in bronchoalveolar lavage fluid were significantly increased after viral infection. The level of major basic protein in bronchoalveolar lavage fluid was not altered after viral infection. In addition, electron microscopic examination of eosinophils in airway tissue and alveolar lumen did not point to increased degranulation after viral infection. In guinea pigs treated with antibody to IL-5 the virus-induced airway hyperresponsiveness to histamine both in vivo and in vitro was almost completely inhibited. In guinea pigs treated with anti-IL-5, viral infection significantly increased the numbers of eosinophils (234%), neutrophils (1,255%), and monocytes (617%) in bronchoalveolar lavage fluid. These data suggest that IL-5 plays an important role in airway hyperresponsiveness to histamine but not in the infiltration of eosinophils after respiratory viral infection.

Airway Resistance

Toxocara-induced eosinophilic inflammation. Airway function and effect of anti-IL-5.

The immunoinflammatory response to parasitic nematode infections and allergic diseases have some similarities, the most profound being the increases in eosinophils and serum total IgE concentration. Whether parasitic infections stimulate or inhibit allergic asthma is a matter of debate. We investigated the effect of Toxocara canis (T. canis) infection on airway function in BALB/c mice at various days post-infection. Within 24 h after infection, the trachea responded hyperreactive to carbachol stimulation. Eosinophils, and to a lesser degree lymphocytes, infiltrated the airways causing interstitial and alveolar inflammation (7 d post-infection). Concurrently with cell infiltration, the trachea became hyporesponsive to carbachol whereas the pulmonary resistance was increased and the dynamic compliance decreased. The hyporeactive response could be simulated in vitro by incubating normal tracheae with eosinophil-enriched bronchoalveolar lavage cells obtained from infected mice. The response depended on the number of cells added to the medium, a lower number causing a hyper- and a higher number a hyporeactive response. Anti-interleukin-5 (anti-IL-5) producing hybridoma cells given simultaneously with T. canis infection inhibited eosinophil infiltration in the airways but not that of lymphocytes. Anti-IL-5 treatment prevented tracheal hyporeactivity but not perivascular and peribronchial edema, increased pulmonary resistance, or decreased dynamic compliance. Treatment with isotype control antibody did not affect eosinophil number nor the observed changes in airway functions. It was concluded that T. canis-induced airway inflammation coincided with increased pulmonary resistance, decreased dynamic compliance, and perivascular/peribronchial edema. These phenomena were independent on the presence of eosinophils, whereas tracheal hyporeactivity was clearly associated with airway eosinophilia.

Animals

Virus-induced airway hyperresponsiveness. Role of inflammatory cells and mediators.

Viral respiratory infections induce airway hyperresponsiveness in asthmatic patients, in healthy persons, and in a number of animal species. In asthmatics the degree of airway hyperresponsiveness is associated with the severity of exacerbations. The respiratory tract of an asthmatic is inflamed, and these inflammatory cells might be involved in modulating airway responsiveness. In contrast, no data are available on the role of bronchoalveolar cells in the airways of "healthy" persons or asthmatic patients suffering a respiratory tract infection. Because of the lack of information on this issue, the present review has been written. A number of animal studies have now been performed suggesting the involvement of inflammatory cells during a viral respiratory infection. The changes in number and activity of bronchoalveolar cells after a viral infection have been compared with changes in airway morphology and the development of airway hyperresponsiveness. Based on these data we suggested, the following hypothesis: Viruses damage the epithelial layer of the respiratory tract and activate bronchoalveolar cells. Subsequently, a number of mediators are released that can stimulate metachromatic cells, which in turn release products that increase vascular permeability and attract inflammatory cells that might cause additional epithelial damage. Finally, the released mediators and the morphologic changes together results in airway obstruction and the development of hyperresponsiveness.

Animals

Virus-induced airway hyperresponsiveness in guinea pigs is related to a deficiency in nitric oxide.

Intratracheal inoculation of parainfluenza type 3 virus to guinea pigs induces a marked increase in airway responsiveness in vivo and in vitro. In spontaneously breathing anesthetized guinea pigs inhalation of an aerosol containing the nitric oxide (NO) precursor L-arginine (2.0 mM) completely prevented the virus-induced airway hyperresponsiveness to histamine. In addition, perfusion of L-arginine (200 microM) or the direct NO-donor S-nitroso-N-acetyl-penicillamine (SNAP, 1 microM) through the lumen of tracheal tubes from infected animals prevented the increase in airway responsiveness to histamine or the cholinoceptor agonist methacholine. The NO synthase inhibitor N omega-nitro-L-arginine methyl ester (L-NAME, 120 microM) did not further increase the virus-induced airway hyperresponsiveness. In additional experiments, NO was measured with an Iso-NO nitric oxide meter and sensor. Stimulation of control tissues in vitro with histamine (10(-3) M) resulted in a contraction with a simultaneous release of NO (44.5 +/- 5.4 nM). The release of NO was markedly reduced by 75% (P < 0.01, 11.4 +/- 3.1 nM) in tracheas from virus-infected animals that demonstrated enhanced contractile responses. Preincubation of tissues from virus-treated guinea pigs with L-arginine (200 microM) completely prevented the enhanced contraction and simultaneously returned the NO production to control values (51.2 +/- 3.4 nM). An NO deficiency might be causally related to the development of airway hyperresponsiveness after a viral respiratory infection.

Animals

Mucosal exudation associated with a pulmonary delayed-type hypersensitivity reaction in the mouse. Role for the tachykinins.

In this study, the role for sensory neuropeptides in the induction of pulmonary inflammation associated with a delayed-type hypersensitivity (DTH) reaction in the mouse lung was investigated. Dinitrofluorobenzene (DNFB) was used as the sensitizing hapten and dinitrobenzene sulfonic acid was used as the intranasal challenge. Two hours after the challenge, no hapten-specific differences were observed between vehicle- and DNFB-sensitized mice. However, mucosal exudation and leukocyte accumulation (mononuclear leukocytes and neutrophils) were enhanced in the DNFB group 24 h after the challenge. In additional experiments we investigated whether the sensory nerves and specific sensory neuropeptides play a role in this pulmonary DTH reaction. The selective NK1 antagonist (RP 67580; 5.10(-9) mol/mouse), administered 5 min before and 1 h after the challenge, suppressed mucosal exudation and leukocyte accumulation in the airways 24 h after the challenge. In contrast, the selective calcitonin gene-related peptide (CGRP) antagonist, CGRP8-37 (5.10(-9) mol/mouse) had no effect on the pulmonary DTH reaction. Surprisingly, the depletion of all sensory neuropeptides resulted in an enhancement of mucosal exudation in vehicle- and DNFB-sensitized mice 24 h after the challenge. In conclusion, these results demonstrate that the tachykinins are important in mediating mucosal exudation and leukocyte accumulation associated with the DTH reaction in mouse airways. However, the findings in neuropeptide-depleted mice suggest that the sensory nerves may also play a protective role in mouse airways.

Animals

Reversal of bradykinin-induced relaxation to contraction after interferon-gamma in bovine isolated mesenteric arteries.

Bovine isolated mesenteric arterial rings were preincubated for 20 h with interferon-gamma (100 U ml-1) and relaxation in response to bradykinin (10(-12) to 3 x 10(-8) M) was then measured isometrically in an organ bath. Interferon-gamma pretreatment for 20 h markedly attenuated the endothelium-dependent bradykinin relaxation in arteries precontracted with 9,11-dideoxy-11 alpha,9 alpha-epoxymethano prostaglandin F2 alpha (U46619), and the relaxation was reversed to contraction at the highest bradykinin concentrations (-72 +/- 5% for control vs. + 6 +/- 10% for interferon-gamma). Cycloheximide (20 micrograms ml-1) present during the 20-h preincubation completely prevented the interferon-gamma effect. Methyl-L-arginine (1 mM) treatment during the 20-h preincubation also inhibited the interferon-gamma effect on bradykinin relaxation (-47 +/- 18% for interferon-gamma and methyl-L-arginine), which suggests involvement of nitric oxide during the 20-h preincubation with interferon-gamma. In control arteries, des-Arg9-bradykinin, a bradykinin B1 receptor agonist, evoked contractions, which were augmented in rings preincubated for 20 h with interferon-gamma. The bradykinin B1 receptor antagonist, des-Arg9-Leu8-bradykinin (2 microM), present in the organ bath in combination with methyl-L-arginine (1 mM) only present during the 20-h preincubation with interferon-gamma completely restored the bradykinin relaxation (-79 +/- 12%). We suggest two mechanisms. Firstly, prolonged nitric oxide release induced by interferon-gamma during the 20-h preincubation may inhibit bradykinin stimulated endothelium-derived nitric oxide release and action. Secondly, interferon-gamma caused upregulation of the bradykinin B1 receptor-mediated contraction, which may contribute to the decrease in bradykinin-induced vasodilation and cause a reversal to contraction.

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

13-HODE inhibits the intracellular calcium increase of activated human polymorphonuclear cells.

We studied the effect of the linoleic acid metabolite 13-hydroxyoctadecadienoic acid (13-HODE) on the increase of the intracellular calcium concentration, [Ca2+]i, induced by platelet-activating factor (PAF), leukotriene B4 (LTB4), and formyl-Met-Leu-Phe (fMLP) in human polymorphonuclear leukocytes (PMNs). 13-HODE by itself did not change the [Ca2+]i of PMNs. However, when PMNs were preincubated with 13-HODE and subsequently stimulated with PAF, LTB4, or fMLP, an inhibition of the increase of the [Ca2+]i was observed. The PAF-induced calcium response was concentration-dependently inhibited between 0.1 and 5 microM 13-HODE. These results suggest that 13-HODE can affect the increase of the [Ca2+]i and hence can modulate activation of PMNs.

Amino Acid Sequence

A role for cellular immunity in the induction of airway hyperresponsiveness induced by small molecular weight compounds.

In a murine model it was shown that during a T help-1 cell dependent immune reaction, i.e. delayed type hypersensitivity (DTH), directed against the small molecular weight compound picryl chloride (PCI), altered lung functions are induced. Skin sensitization with PCI followed by intranasal hapten challenge resulted in an increment of pulmonary resistance and airway hyperresponsiveness which are general features of asthma. Whether this is also true for low molecular weight compounds, such as toluene diisocyanate, that can induce asthmatic complaints in humans, in addition to T help-2 cell dependent immune responses, remains to be clarified in future studies.

Animals

Dietary linoleic acid-induced changes in respiratory beta-adrenergic receptor function and the form of arrhenius plots of isoprenaline- and prostaglandin E2-stimulated adenylate cyclase activity in a model for atopy.

Varying dietary linoleic acid altered lung membrane fatty acid composition with linoleic acid content increasing from approximately 6% total in those on 3 en% diet to approximately 14% total fatty acid in those on a 12 en% diet. Accompanying this were two- to three-fold increases in the levels of the elongation products of linoleic acid, namely 20:2 (n-6) and 22:5 (n-6) and a decrease in 18:1 oleic acid from approximately 26% to approximately 19% total. Administration of Haemophilus influenzae, to animals on 6 en% linoleic acid, serving as a model for atopy, effected a small increase in the levels of 22:5 (n-3) and doubled those of 22:6 (n-3). beta-Adrenergic-induced tracheal relaxation and stimulation of lung adenylate cyclase were elevated by increasing dietary linoleic acid from 3 to 6 en%, although such differences were abolished in the atopic model and when dietary linoleic acid was increased to 12 en%. Arrhenius plots of NaF-stimulated lung adenylate cyclase activities exhibited a break (t1) at approximately 26 degrees C in all dietary groups with unchanged activation energies and activity. In contrast, whilst both isoprenaline and PGE2-stimulated adenylate cyclase activities showed similar break-points in their Arrhenius plots, dietary linoleic acid manipulation markedly altered their form. As with NaF-stimulated activities then, irrespective of dietary manipulation and induction of atopy, these plots showed an invariant break occurring at approximately 26 degrees C. But, for animals on 3 and 6 en% diets, a second break was apparent at approximately 15 degrees C, which was slightly decreased to approximately 12 degrees C upon induction of atopy and completely abolished on increasing dietary linoleic acid to 12 en%. Accompanying such changes were marked alterations in activation energies. We suggest that profound changes in lung plasma membrane bilayer properties occur upon both altering dietary linoleic acid levels and in atopy. These selectively perturb adenylate cyclase activity when it is receptor-stimulated but not when it is activated by direct G-protein stimulation with NaF. We suggest that atopy and dietary challenge elicit an asymmetric perturbation of the plasma membrane that predominantly affects the outer half of the lipid bilayer.

Adenylyl Cyclases