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Biomedical subjects

C E Mapp

Publications and source records attributed to C E Mapp.

At least 91 records · Page 5Linked to original sources

Late asthmatic reactions, airway inflammation and chronic asthma in toluene-diisocyanate-sensitized subjects.

To determine the importance of airway inflammation for exacerbation and prognosis of asthma induced by toluene diisocyanate (TDI), we first examined sensitized subjects during asthmatic reactions induced by exposure to TDI in the laboratory. We observed that late and dual, but not early, asthmatic reactions induced by TDI are accompanied by a transient increase of airway responsiveness, bronchoalveolar neutrophilia followed by eosinophilia and by an increase of LTB4 and albumin in bronchoalveolar lavage fluid. All these effects were prevented by pretreatment with prednisone. In addition, we examined the lung pathology of 1 sensitized subject who died after exposure at work. The pathologic features of fatal asthma induced by TDI and of chronic asthma induced by TDI suggest the importance of inflammation for the exacerbation and prognosis of the disease.

Asthma↗

Airway inflammation during late asthmatic reactions induced by toluene diisocyanate.

To determine the importance of airway inflammation for the development of late asthmatic reactions, we examined sensitized subjects during late asthmatic reactions induced by exposure to toluene diisocyanate (TDI) in the laboratory. Late asthmatic reactions are associated with a transient increase of bronchial responsiveness and, at the same time, with an increase of neutrophils followed by eosinophils, and of LTB4 and albumin in bronchoalveolar lavage fluid. Late asthmatic reactions, increased bronchial responsiveness, and increase of neutrophils, eosinophils, LTB4, and albumin concentration in bronchoalveolar lavage induced by exposure to TDI are all prevented by pretreatment with prednisone but not with the nonsteroidal anti-inflammatory agent indomethacin. Aerosolized steroids (beclomethasone and dexamethasone isonicotinate) completely inhibit late asthmatic reactions induced by TDI, whereas theophylline has a partial, and verapamil, ketotifen, and cromolyn have no protective effect. These results suggest that late asthmatic reactions induced by TDI may be caused by airway inflammation, and that anti-inflammatory steroids should be recommended in the prophylaxis of TDI asthma.

Asthma↗

Late asthmatic reactions, airway inflammation and chronic asthma in TDI sensitized subjects.

Sensitized subjects may develop symptoms of asthma after exposure to isocyanates in their place of work. After challenge with isocyanates in the laboratory, sensitized subjects develop immediate, late and dual asthmatic reactions. We speculated that toluene diisocyanate (TDI) might cause late asthmatic reactions and increase bronchial responsiveness by causing an acute inflammatory reaction in the airways, and that airway inflammation may be responsible for persistence of occupational asthma induced by isocyanates. To test these hypotheses, we examined sensitized subjects during asthmatic reactions induced by exposure to toluene diisocyanate in the laboratory. We observed that late and dual, but not early, asthmatic reactions are associated with a transient increase of bronchial responsiveness which is associated with an acute inflammatory reaction of the airways characterized by an increase of neutrophils followed by eosinophils, by an increase of leukotriene B4 and albumin in bronchoalveolar lavage fluid, and that all these effects are inhibited by steroids. Longitudinal studies suggest that the majority of subjects with occupational asthma continue to have persistent asthma months and years after the cessation of exposure, and the results of our studies combined with the results of studies performed by others suggest that the persistence of asthma may be related to the persistence of airway inflammation.

Asthma↗

Toluene diisocyanate contracts guinea pig bronchial smooth muscle by activating capsaicin-sensitive sensory nerves.

This study was designed to evaluate the mechanism of action of toluene diisocyanate (TDI) and the role of endogenous neutral endopeptidase in modulating in vitro contractile responses to TDI in guinea pigs. TDI (0.01-1 mM) produced a concentration-dependent contraction of the guinea pig main bronchi. Sensory nerve desensitization with capsaicin greatly reduced and in some cases almost abolished TDI-induced contractions. The neutral endopeptidase inhibitor phosphoramidon significantly increased the contractile response to TDI. Pretreatment with the substance P antagonist (D-Arg1,D-Pro2,D-Trp7,9,Leu11)-substance P greatly reduced TDI-induced contractions. These results suggest that TDI activates the "efferent" function of capsaicin-sensitive sensory nerves and that neutral endopeptidase may play a role in modulating the response in guinea pigs.

Animals↗

Theophylline inhibits early and late asthmatic reactions induced by allergens in asthmatic subjects.

To determine whether oral slow-release theophylline inhibits asthmatic reactions and the associated increase of airway responsiveness to methacholine induced by allergens, we examined six asthmatic subjects who developed a dual asthmatic reactions after allergen bronchoprovocation with Dermatophagoides pteronyssinus or with grass pollen. We gave oral slow-release theophylline and placebo to each subject for seven days in two series of experiments in a double-blind, randomized, crossover study. The individual daily dose of theophylline (4.7 to 16.6 mg/kg/day, divided into two doses) was calculated for each subject by measuring individual theophylline clearance and optimal daily dosage. During treatment with placebo, the subjects developed dual asthmatic reactions, ie, FEV1 decreased from 4.1 +/- 0.17 L before bronchoprovocation to 3.2 +/- 0.14 L at 15 minutes and to 3.2 +/- 0.19 L at seven hours after allergen bronchoprovocation. By contrast, during active treatment FEV1 decreased from 4.2 +/- 0.28 L to 3.9 +/- 0.26 L at 15 minutes, and to 3.8 +/- 0.13 L at seven hours (both cases, P less than .03 compared with placebo). Mean serum theophylline concentration was 13.2 +/- 0.6 mg/L. Although 1 week's treatment with slow-release theophylline did not modify significantly either prechallenge airway responsiveness to methacholine or its increase after allergen inhalation challenge, in five out of six subjects theophylline significantly inhibited the increase of airway responsiveness to methacholine induced by allergens compared to placebo and control day (P less than .05). These results suggest that slow-release theophylline may inhibit allergen-induced asthmatic reactions and the associated increase of airway responsiveness, suggesting some antiinflammatory effects for this drug.

Administration, Oral↗

Evidence that toluene diisocyanate activates the efferent function of capsaicin-sensitive primary afferents.

Isocyanates are an important cause of occupational asthma. The mechanism of isocyanate-induced asthma is still unknown. To determine whether toluene diisocyanate stimulates the 'efferent' function of peripheral endings of capsaicin-sensitive sensory nerves, we investigated the effect of toluene diisocyanate in the rat isolated urinary bladder, a preparation in which the action of capsaicin has been well characterized. Toluene diisocyanate (0.03-3 mM) produced a concentration-dependent contraction of the bladder strips. Its maximal effect was about 50% of the response to capsaicin (1 microM). Previous exposure of the strips to capsaicin followed by washing out produced complete unresponsiveness, both to the first exposure to toluene diisocyanate and to a second exposure of capsaicin. Further, the response to both toluene diisocyanate and capsaicin was completely prevented by extrinsic bladder denervation, achieved by bilateral removal of pelvic ganglia (72 h before). Repeated exposure of the rat bladder to toluene diisocyanate reduced the capsaicin-evoked release of calcitonin gene-related peptide-like immunoreactivity (CGRP-LI), taken as biochemical marker of activation of these sensory nerves. These experiments provide the first evidence that toluene diisocyanate activates directly or indirectly the efferent function of capsaicin-sensitive primary sensory nerves.

Animals↗

Pharmacological modulation of the contractile response to toluene diisocyanate in the rat isolated urinary bladder.

1. Toluene diisocyanate produced concentration-dependent contractions of the rat isolated urinary bladder. 2. The contractions were tetrodotoxin-resistant and were abolished by previous exposure of the strips to capsaicin. 3. Indomethacin (5 microM) and ruthenium red (30 microM) inhibited toluene diisocyanate-induced contractions. Responses expressed as a percentage of the response obtained with substance P, 30 nM, were respectively 141.6 +/- 24.8% and 20.1 +/- 5.1% in control and indomethacin-treated strips (P less than 0.005); 123.0 +/- 30.2% and 14.0 +/- 6.5% in control and ruthenium red-treated strips (0.01 less than P less than 0.05). 4. These results suggest that toluene diisocyanate-induced contractions of the rat isolated bladder are the result of the release of cyclo-oxygenase products which may act by activating the capsaicin receptor.

Animals↗

Leukotriene B4 and late asthmatic reactions induced by toluene diisocyanate.

We investigated whether leukotriene B4 (LTB4) is released from the lungs of sensitized subjects during asthmatic reactions induced by toluene diisocyanate (TDI). We examined three groups of TDI-sensitized subjects, one after no exposure to TDI, the second 8 h after an exposure to TDI that caused an early asthmatic reaction, and the third 8 h after an exposure to TDI that caused a late asthmatic reaction. We analyzed bronchoalveolar lavage (BAL) fluid by reverse-phase high-performance liquid chromatography and by specific radioimmunoassay. The mean concentration of LTB4 was higher [0.31 +/- 0.09 (SE) ng/ml, range 0.15-0.51] in BAL fluid of sensitized subjects who developed a late asthmatic reaction than in BAL fluid of subjects who developed an early asthmatic reaction (0.05 +/- 0.04 ng/ml, range 0-0.224), and no LTB4 was detectable in the control subjects. We also performed BAL 8 h after TDI exposure on four TDI-sensitized late-dual reactors who were on steroid treatment. In this group of subjects no LTB4 was detectable. These results suggest that LTB4 may be involved in late asthmatic reactions induced by TDI.

Adult↗

Ketotifen does not inhibit asthmatic reactions induced by toluene di-isocyanate in sensitized subjects.

In order to determine whether treatment with ketotifen inhibits asthmatic reactions induced by toluene di-isocyanate (TDI), we studied six sensitized subjects with previously demonstrated dual or late asthmatic reaction after inhalation challenge with TDI. Ketotifen (1 mg b.i.d., orally) or placebo was administered for 7 days to the examined subjects, according to a double-blind, cross-over, placebo-controlled study design. When the subjects were treated with either ketotifen or placebo, FEV1 markedly decreased after exposure to TDI. These results suggest that the anti-asthmatic agent ketotifen is not effective in TDI-induced asthma and suggest that it should not be used in the prophylaxis of asthmatic reactions induced by TDI in sensitized subjects.

Asthma↗

Response to acetylcholine and myosin content of isolated canine airways.

Contractility of tracheal smooth muscle strips and spiral strips of fourth to fifth generation bronchi was studied in organ baths. The relationship among contractility, airway smooth muscle myosin, and smooth muscle thickness was also examined. The trachea was divided into three segments, each consisting of 12-14 rings. Smooth muscle strips from each of the three regions (top, middle, and bottom of the trachea) and from fourth to fifth generation bronchi were studied. Acetylcholine (ACh) sensitivity (-log EC50) was 8.1, 7.1, 7.9, and 6.1 for the top, middle, and bottom of the trachea and the bronchi, respectively. At P = 0.01, the EC50 ACh value of the top of the trachea differed from the EC50 value of the bronchi. Maximal tension (Tmax) generated in bronchi (3.2 g) was lower (P less than 0.01) than in the top (10.4 g), middle (7.1 g), and bottom of the trachea (5.1 g). Differences between trachea and bronchi disappeared when Tmax was corrected for smooth muscle myosin content. Thickness of smooth muscle in bronchi was less (P less than 0.01) than in the three regions of trachea. Tmax was significantly correlated with airway smooth muscle thickness (r = 0.56; P less than 0.05). These results suggest that in mongrel dogs sensitivity to ACh shows a gradient from the top of the trachea to the bronchi and that Tmax is greater in the trachea than in the bronchi and is significantly correlated with thickness of smooth muscle.

Acetylcholine↗

Dexamethasone isonicotinate inhibits dual and late asthmatic reactions but not the increase of airway responsiveness induced by toluene diisocyanate in sensitized subjects.

To determine whether treatment with aerosolized dexamethasone isonicotinate inhibits asthmatic reactions and the associated increase in airway responsiveness induced by toluene diisocyanate (TDI), we studied six sensitized subjects with previously demonstrated dual or late asthmatic reaction after inhalation challenge with TDI. Dexamethasone isonicotinate (four puffs bid for seven days, ie, 0.5 mg bid for seven days; last four puffs 30 minutes before TDI) was administered for seven days before the inhalation challenge with TDI (0.010 to 0.015 ppm for 10 to 30 minutes) to each subject, according to a single-blind study design. When the subjects received no treatment, FEV1 markedly decreased and airway responsiveness increased after exposure to TDI. By contrast, when the subjects were treated with dexamethasone-isonicotinate, FEV1 decreased significantly less, but airway responsiveness still significantly increased after exposure to TDI. These results suggest that aerosolized dexamethasone isonicotinate may be used in the prophylaxis of TDI-induced late asthmatic reactions.

Adult↗

[Non-allergic factors of bronchial asthma].

The functional characteristic of all forms of asthma is the airway hyperresponsiveness to several stimuli. Airway hyperresponsiveness is always present in current asthmatics and can be also documented in some subjects during the symptom-free periods. The mechanisms of the spontaneous or induced increases of airway hyperresponsiveness are probably different from those responsible for stable airway hyperresponsiveness. The transitory increases in airway hyperresponsiveness are associated with an acute inflammatory response of the bronchial mucosa, whereas airway inflammation is not a constant finding in subjects with stable airway hyperresponsiveness. The mechanisms involved in the latter condition might be a functional and/or structural derangement of bronchial epithelium, a functional or structural alteration of airway smooth muscle or alteration in the function of the autonomic nervous system.

Asthma↗

Neutrophils and asthma.

The importance of inflammation in asthma has been recognized for a long time and recently proved in man and animal models. All inflammatory cells are probably involved in exacerbations of asthma. Neutrophils in particular are present in the airways during and after the spontaneous asthma attacks in man and during asthmatic reactions and airway hyperresponsiveness induced experimentally in man and animals. Depletion of neutrophils prevents these effects and repletion with neutrophils reconstitutes them. Moreover, the supernatant from stimulated human neutrophils causes transient hyperresponsiveness. However, neutrophils are not increased in stable asthmatics with hyperreactive airways and are not involved in airway hyperresponsiveness induced experimentally in some animals (e.g. guinea-pigs). The studies reviewed suggest that neutrophils may be involved in the transient increases of airway responsiveness associated with exacerbations of asthma, but not in the long-lasting hyperresponsiveness of stable asthmatics.

Animals↗

Airway smooth muscle biochemistry and asthma.

The contractile properties of muscle cells are related to the molecular structure of myosin. The molecular structure and the antigenicity of myosin isoforms is different in skeletal, cardiac, and smooth muscle. We investigated whether different isoforms of myosin heavy chains are present in smooth muscle from human lungs. We observed that the distribution of three isoforms of smooth muscle myosin heavy chains is different in airways compared to pulmonary arteries, and in central airways and arteries compared to lung parenchyma. We also observed that asthmatic subjects have a similar distribution, but different immunoreactivity of myosin heavy chains in bronchial smooth muscle compared to normal subjects. These data suggest that changes in the contractile properties of smooth muscle in human lungs may be associated with changes in myosin heavy chain isoforms.

Actins↗

Steroid and non-steroid anti-inflammatory agents in asthma.

Anti-inflammatory steroids are the principal agents for the treatment of asthma. Systemic corticosteroids are recommended for the treatment of acute episodes of asthma, whereas inhaled steroids should be used in the long-term prophylaxis of asthma. Because of their side-effects, there is a need for additional research and development of steroids without systemic activity, and/or other anti-inflammatory agents for use in the long-term prophylaxis of asthma.

Administration, Inhalation↗

Dose-dependent inhibitory effect of inhaled beclomethasone on late asthmatic reactions and increased responsiveness to methacholine induced by toluene diisocyanate in sensitised subjects.

To determine whether inhaled beclomethasone, both at low and at high doses, inhibits late asthmatic reactions and the associated increase in airway responsiveness induced by toluene diisocyanate (TDI), we studied 9 sensitised subjects. Low dose beclomethasone (200 micrograms bid), high dose beclomethasone aerosol (1000 micrograms bid), and placebo were administered for 7 days before TDI inhalation challenge to each subject, according to a double-blind, crossover study design. The washout period between the treatments was at least 1 week. When the subjects were treated with placebo, forced expiratory volume in 1 sec (FEV1) markedly decreased after exposure to TDI. By contrast, high dose beclomethasone prevented the late asthmatic reaction and the low dose partially inhibited the reaction. With placebo the mean (+/- SE) value of FEV1 4 h after exposure to TDI was 2.6 +/- 0.17 L, which went to 3.3 +/- 0.12 after low dose beclomethasone, and to 3.5 +/- 0.15 L after high dose of beclomethasone (significant difference in the decrease of FEV1 in the 8 h after exposure to TDI, between treatments: F = 9.87, (P less than 0.001), After treatment with placebo or with low dose beclomethasone, airway responsiveness to methacholine increased 8 h after exposure to TDI. With placebo, the PD20 decreased from 0.66 mg (Geometric Standard Error of the Mean [GSEM], 1.38) to 0.18 mg (GSEM, 1.46); with low dose inhaled beclomethasone, the PD20 decreased from 0.93 mg (GSEM, 1.42) to 0.36 mg (GSEM, 1.63).(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Inhalation↗

Pathogenesis of bronchial hyperresponsiveness.

In asthmatic subjects, the degree of bronchial hyperresponsiveness correlates with the severity of asthma and the amount of treatment required to control asthma. Both in normal and in asthmatic subjects, the degree of airway responsiveness may increase after viral infections, exposure to oxidant pollutants and allergens or sensitizing agents; however, airway hyperresponsiveness is quite stable in the absence of exposure to inflammatory stimuli, suggesting that there are at least two components in airway hyperresponsiveness: a transient component, caused by airway inflammation, and a long-lasting one, unrelated to exposure to acute inflammatory stimuli, which is hypothesized to be due to changes in the autonomic innervation or in the smooth muscle itself.

Animals↗

Persistent asthma due to isocyanates. A follow-up study of subjects with occupational asthma due to toluene diisocyanate (TDI).

Thirty-five subjects with occupational asthma due to toluene diisocyanate (TDI) exposure were examined. All the subjects were studied with inhalation challenges with TDI and with methacholine. TDI asthma was documented by a positive inhalation challenge to low levels of TDI. Airway responsiveness to methacholine was in the range of asthmatic patients at the time of diagnosis. After an average follow-up interval of 10 months, all the subjects were re-examined. Of the 35 subjects examined, 30 subjects (85.7%) left the workplace, and 5 remained in the same job. Twenty-seven subjects (77.1%) continued to have asthmatic attacks requiring medication for relief of symptoms. At follow-up examination, TDI asthma was documented by a positive inhalation challenge to TDI in 27 subjects. Of these 27 TDI reactors, 22 subjects were removed from occupational exposure to TDI. The TDI reactors had persistent respiratory symptoms and airway hyperresponsiveness to methacholine. At follow-up visit, 8 subjects (22.9%) lost sensitization to TDI; 5 subjects (62.5%) in this group had also normal airway responsiveness to methacholine after removal from exposure. Only 1 subject among the TDI nonreactors complained of mild respiratory symptoms. At diagnosis, there were no significant differences between subjects who recovered and those who did not with regard to age, smoking habits, atopy, duration of exposure to isocyanates, duration of symptoms, baseline FEV1 (% pred), and baseline airway responsiveness to methacholine.(ABSTRACT TRUNCATED AT 250 WORDS)

Asthma↗