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R Olivenstein

Publications and source records attributed to R Olivenstein.

At least 37 records · Page 2Linked to original sources

IL-4 and IL-5 mRNA expression in induced sputum of asthmatic subjects: comparison with bronchial wash.

BACKGROUND: The local production of TH2 -type cytokines is thought to orchestrate the ongoing eosinophilic inflammation and contribute to the pathophysiologic features of allergic asthma. Previous studies investigating cytokine expression in asthmatic individuals have used invasive fiberoptic bronchoscopy techniques. To date, there have been no reports of cytokine mRNA expression in induced sputum as a means of quantifying local inflammatory events. OBJECTIVES: We examined whether IL-4, IL-5, and IFN-gamma mRNA expression could be detected in cells from induced sputum in subjects with mild asthma and normal control subjects. In addition, we compared the profile of inflammatory cells and cytokine mRNA in sputum and bronchial wash fluid. METHODS: Cells positive for IL-4, IL-5, and IFN-gamma mRNA were determined by using in situ hybridization on cytospun aliquots of sputum induced by successive inhalations of hypertonic saline. Inflammatory cells were quantified by using immunologic cell surface markers and immunocytochemistry. RESULTS: IL-4 and IL-5 mRNA were detected in the sputum of all asthmatic subjects, and the number of cells expressing these cytokines was significantly higher than that found in control subjects. Colocalization studies showed CD3-positive T cells were the major sources of IL-4 and IL-5 mRNA. CONCLUSIONS: This study demonstrates that induced sputum can be used to detect mRNA for TH2 -type cytokines in bronchial asthma and that the increase in IL-4 and IL-5 mRNA expression is similar to that seen with more invasive techniques. The qualitative differences in inflammatory cell numbers between sputum induction and bronchial wash are consistent with their sampling of different airway compartments.

Adult↗

Airway epithelium expresses interleukin-18.

Interleukin (IL)-18 is an interferon (IFN)-gamma-inducing cytokine suggested to be important in regulating inflammatory responses. This study investigated the pulmonary expression of IL-18 under conditions characterized by T-helper (Th)1 (lipopolysaccharide (LPS) treatment/sarcoidosis) and Th2 (ovalbumin (OVA) challenge/asthma) cytokine production. In situ hybridization and immunocytochemistry were used to determine the number of cells expressing IL-18, IFN-gamma, IL-5 and major basic protein (MBP) within lung tissue from Balb/c mice stimulated with LPS, OVA and in normal control mice. Bronchial biopsies from patients with sarcoidosis, asthma and control individuals were also examined. IL-18 was localized primarily to airway epithelium and mononuclear cells. Constitutive expression was observed within the lungs of control mice. Animals challenged with LPS exhibited more IL-18 messenger ribonucleic acid (mRNA)-positive and IFN-gamma immunoreactive cells, compared to control mice (p<0.01). OVA-challenged mice had fewer IL-18 mRNA positive and more IL-5 and MBP immunoreactive cells, compared to control mice (p<0.01). Similarly, constitutive expression of IL-18 protein was observed within the airway epithelium of control individuals, with more positive cells found within sarcoidosis tissue (p<0.01) and fewer within asthmatic tissue (p<0.01), compared to controls. These results demonstrate the expression of interleukin-18 within airway epithelium and the regulation of this cytokine under conditions of both T-helper1 and T-helper2 cytokine production.

Adult↗

Phenotype of IL-16-producing cells in bronchial mucosa: evidence for the human eosinophil and mast cell as cellular sources of IL-16 in asthma.

BACKGROUND: We have previously shown increased expression of the CD4+ cell chemoattractant interleukin (IL)-16 in bronchial biopsies of atopic asthmatic subjects compared to normal controls. IL-16 immunoreactive cells were identified as both epithelial cells and non-epithelial inflammatory cells. The aim of this study was to characterize and compare the phenotype of non-epithelial inflammatory cells that express IL-16 immunoreactivity in bronchial biopsies from non-atopic normal controls and atopic asthmatic subjects. METHODS: Sections from endobronchial biopsies obtained from non-atopic normal controls and atopic asthmatics were processed for double immunocytochemistry. IL-16 immunoreactivity was assessed using a polyclonal anti-IL-16 antibody and the avidin-biotin complex-diaminobenzidine method. The phenotype of IL-16 immunoreactive cells was assessed using anti-CD3, anti-MBP, anti-tryptase and anti-CD68 mAbs and the alkaline phosphatase complex-Fast Red method. RESULTS: In normal subjects, the majority of IL-16 immunoreactive cells were CD3+ T cells (71.1+/-10.3%) and CD68+ macrophages (22.4+/-8.1%). IL-16 immunoreactivity coexpressed with tryptase+ mast cells in 4 of 7 normal subjects whereas IL-16 immunoreactivity coexpressed with MBP+ eosinophils in only 1 normal subject. In atopic asthmatic subjects, IL-16 immunoreactive cells were mainly CD3+ T cells (60.8+/-8.7%) and MPB+ eosinophils (16.8+/-8.2%). IL-16 immunoreactivity also coexpressed with tryptase+ mast cells (10.6+/-4.0%) in all asthmatic subjects. The number of IL-16 immunoreactive cells that coexpressed MBP was higher in asthmatic subjects compared to normal controls (p = 0.003). CONCLUSION: Our data show that T cells are the major non-epithelial cellular source of IL-16 in normal and asthmatic airways. Eosinophils and mast cells comprised other potential cellular sources of IL-16 in asthmatic airways.

Adult↗

Automatic control of pressure support mechanical ventilation using fuzzy logic.

There is currently no universally accepted approach to weaning patients from mechanical ventilation, but there is clearly a feeling within the medical community that it may be possible to formulate the weaning process algorithmically in some manner. Fuzzy logic seems suited this task because of the way it so naturally represents the subjective human notions employed in much of medical decision-making. The purpose of the present study was to develop a fuzzy logic algorithm for controlling pressure support ventilation in patients in the intensive care unit, utilizing measurements of heart rate, tidal volume, breathing frequency, and arterial oxygen saturation. In this report we describe the fuzzy logic algorithm, and demonstrate its use retrospectively in 13 patients with severe chronic obstructive pulmonary disease, by comparing the decisions made by the algorithm with what actually transpired. The fuzzy logic recommendations agreed with the status quo to within 2 cm H(2)O an average of 76% of the time, and to within 4 cm H(2)O an average of 88% of the time (although in most of these instances no medical decisions were taken as to whether or not to change the level of ventilatory support). We also compared the predictions of our algorithm with those cases in which changes in pressure support level were actually made by an attending physician, and found that the physicians tended to reduce the support level somewhat more aggressively than the algorithm did. We conclude that our fuzzy algorithm has the potential to control the level of pressure support ventilation from ongoing measurements of a patient's vital signs.

Adult↗

Enhanced proteoglycan deposition in the airway wall of atopic asthmatics.

Increased extracellular matrix (ECM) deposition in the airway wall contributes to the airway wall remodeling observed in asthmatics. Although alterations in collagen have been well described, less is known about changes in other components of the ECM, particularly proteoglycans (PGs). Endobronchial biopsies were obtained from seven patients with mild atopic asthma and six normal control subjects. Tissues were blocked in OCT and frozen in isopentane. Sections were immunostained with antibodies for the small leucine-rich PGs, lumican, biglycan, decorin, and fibromodulin and for versican, a large chondroitin sulfate PG. We calculated the area of positive staining in the subepithelial layer, correcting for basement membrane length. Lumican, biglycan, and versican were localized predominantly in the subepithelial layer of the airway wall in all groups. PG deposition was significantly increased in asthmatics as compared with that in control subjects. Furthermore, the degree of PG immunoreactivity was significantly correlated with airway responsiveness in the asthmatics (lumican; r = -0.77, p < 0.05; biglycan: r = -0.76, p < 0.05; versican: r = -0.74, p = 0.06). Our results suggest that PGs may play a role in airway wall remodeling and thereby, airway mechanics in asthma.

Asthma↗

Increased expression of IL-12 receptor mRNA in active pulmonary tuberculosis and sarcoidosis.

Cytokines have been implicated in the pathophysiology and development of pulmonary diseases such as tuberculosis and sarcoidosis. In particular, the numbers of cells expressing Th1-type cytokines such as IFN-gamma and IL-12 are increased within the lungs of patients with these granulomatous diseases. As a factor promoting the commitment of naive lymphocytes to a Th1-type profile of cytokine expression, IL-12 may be pivotal in the cascade of proinflammatory events within the airways. In this study, we examined the expression of the IL-12 receptor (IL-12R) mRNA in bronchoalveolar lavage (BAL) fluid from patients with active pulmonary tuberculosis (n = 6) and active pulmonary sarcoidosis (n = 6), and from allergic asthmatics (n = 6) and normal control subjects (n = 6). Bronchoscopy with BAL was undertaken, and cell cytospins were examined using the technique of in situ hybridization. There was a significant increase in the numbers of cells expressing mRNA for both beta(1) and beta(2) subunits of the IL-12R in active pulmonary sarcoidosis (p < 0.02, p < 0.01, respectively) and active pulmonary tuberculosis (p < 0.01, p < 0.005, respectively) compared with normal control subjects. In contrast, the allergic asthmatic patients exhibited a significant decrease in the number of IL-12R mRNA-positive cells (both beta(1) and beta(2) subunits (p < 0.01, p < 0.005, respectively), compared with the normal control subjects. These patients did, however, exhibit a significant increase in IL-4R mRNA, which was not evident in those with either tuberculosis or sarcoidosis when compared with normal subjects (p < 0.05). Colocalization studies demonstrated that CD8+ve cells are a principal site for the expression of IL-12R in tuberculosis. In sarcoidosis, IL-12R was expressed both on CD4+ve and CD8+ve cells. The increased expression of receptors for IL-12 in granulomatous diseases such as pulmonary tuberculosis and sarcoidosis provides evidence supporting the commitment of lymphocytes to a Th1-type cytokine profile in vivo.

Adult↗

Flow limitation and dyspnoea in healthy supine subjects during methacholine challenge.

The purpose of this study was to assess whether during standard methacholine (Mch) challenge (concentration up to 128 mg x mL(-1)) healthy supine subjects a) develop tidal expiratory flow limitation (FL) and hyperinflation, and b) whether the onset of tidal FL is associated with dyspnoea. Eight healthy subjects were studied. Dyspnoea was assessed using the Borg scale, FL by the negative expiratory pressure (NEP) method and hyperinflation in terms of decrease in inspiratory capacity (IC). Seven patients became flow limited at Mch doses ranging 4-64 mg x mL(-1), with FL encompassing 34-84% of the control tidal volume. In six of them the onset of tidal FL was associated with little or no dyspnoea and a modest degree of hyperinflation (deltaIC <-0.4 L). In one subject, however, onset of FL was associated with a substantial reduction in IC (0.58 L) and moderately severe dyspnoea. In all of these seven subjects FL was transiently reversed after an IC manoeuvre. In conclusion, the results show that a) most healthy subjects may develop flow limitation and hyperinflation during methacholine challenge in supine position, and b) at onset of flow limitation there is little or no dyspnoea, suggesting that onset of dynamic airway compression per se does not elicit significant dyspnoea. Significant dyspnoea probably only occurs with marked dynamic hyperinflation.

Adult↗

Microvascular leakage in the airway wall and lumen during allergen induced early and late responses in rats.

The potential contribution of microvascular leakage to airway narrowing during the early (ER) and late (LR) responses following allergen challenge was determined in Brown Norway (BN) rats actively sensitized with ovalbumin (OA). To study leak into the airway wall, rats (n = 46) were challenged 2 weeks later with aerosolized OA, saline, or serotonin (5-HT) to study either ER (n = 25), LR (n = 15), or 5-HT (n = 6) responses. Pulmonary resistance (RL) was used to measure airway narrowing. Microvascular leak was determined by the Evans blue (EB) technique in the airway tissues, and in another group of BN, by EB in bronchoalveolar lavage (BAL) in the airway lumen (n = 43). EB increased in the airways of 5-HT challenged rats (P < 0.05), but not during ER or LR. EB in BAL increased significantly during the ER (101 +/- 31.35 ng/ml BAL), vs saline challenge (10.82 +/- 1.66; P < 0.05) and during the LR at 3, 4, 5, and 7 h following OA challenge compared with controls (P < 0.05). These results suggest that fluid transits rapidly from the airway microvascular circulation and into the airway lumen following allergen challenge. The measurement of EB in BAL can detect microvascular leak into the airway lumen during the ER and LR. Plasma leak into the airway lumen may contribute to the increase in pulmonary resistance observed during ER and LR in BN rats.

Airway Resistance↗

Depletion of CD8+ T cells enhances pulmonary inflammation but not airway responsiveness after antigen challenge in rats.

BACKGROUND: CD8+ (OX-8+) T cells may suppress airway inflammation and airway responsiveness after allergen challenge. OBJECTIVE: We studied the effects of depletion of OX-8+ T cells on allergen-induced lung eosinophilia and airway responsiveness in the Sprague-Dawley rat. METHODS: Sprague-Dawley rats were sensitized to ovalbumin and challenged by aerosol 14 days later. Test animals received either low-dose (2 mg, n = 9) or high-dose (3 mg, n = 7) OX-8 monoclonal antibody (mAb), whereas controls (n = 8) received BALB/c ascites fluid. A fourth group of animals (n = 10) was not sensitized to ovalbumin and also received ascites fluid. Twenty-four hours after ovalbumin challenge, responsiveness to methacholine was measured, and lung inflammation was assessed in the large airways and small airways and parenchyma. RESULTS: Circulating and airway CD8+ T cells were decreased by OX-8 mAb administration with greatest changes in animals treated with high-dose OX-8 mAb compared with controls (blood: 1.0% +/- 3.6% vs 18.7% +/- 3.9%, p < 0.05); (large airways: 2.5% +/- 1.2% vs 13.8% +/- 1.2%, p < 0.05). Ovalbumin challenge resulted in increases in macrophages and neutrophils in the small airways and parenchyma of sensitized compared with unsensitized rats (p < 0.05). High-dose OX-8 mAb further increased total leukocytes, attributable to increases in neutrophils and eosinophils, retrieved from the large airways and small airways and parenchyma compared with other groups (p < 0.05). Airway responsiveness to methacholine was not significantly different between control and ovalbumin-challenged animals and was not augmented by OX-8 pretreatment. CONCLUSION: CD8+ T cells modulate the extent of allergen-induced airway inflammation. However, the enhancement of inflammation was not sufficient to affect airway responsiveness.

Animals↗

Association between late allergic bronchoconstriction in the rat and allergen-stimulated lymphocyte proliferation in vitro.

T lymphocytes are potentially of importance in determining the inflammatory response in the airways after allergen challenge. We hypothesized that the proliferative response of lymphocytes on exposure to allergen in vitro would be associated with the magnitude of the airway response in vivo after inhalational challenge. We studied Brown Norway rats that were actively sensitized with ovalbumin (OA) in aluminum hydroxide gel using Bordetella pertussis as an adjuvant. Two weeks later, blood mononuclear cells were isolated, and their proliferative response to culture with OA was measured with 3H-thymidine incorporation. Subsequently, the animals were anesthetized and challenged with aerosolized OA. Early allergic response (ER) and late (LR) allergic response were determined from the changes in pulmonary resistance (RL). Both significant ER and LR were observed in sensitized and challenged animals. The LR (measured as the area under the curve of RL against time) had a median value of 15.2 and ranged from 0.1 to 81.1 units. Lymphocyte proliferation occurred on exposure to OA (34,336 +/- 7,447 cpm) but less than after the mitogen Concanavalin A (250,685 +/- 76,676 cpm). The stimulation index (OA-stimulated 3H-thymidine incorporation standardized for baseline incorporation) was positively correlated with the magnitude of the late response. Interleukin-2 was significantly increased in the supernatant of cultured mononuclear cells exposed to OA, confirming T-cell activation. We conclude that the capacity of sensitized peripheral blood lymphocytes to respond to allergens may determine the magnitude of late airway responses.

Airway Resistance↗

The role of the leukocyte adhesion molecules VLA-4, LFA-1, and Mac-1 in allergic airway responses in the rat.

Chronic airway inflammation is involved in the pathogenesis of asthma. The leukocyte adhesion molecules VLA-4 of the beta 1 integrin family, and LFA-1 and Mac-1 of the beta 2 family have a demonstrated role in leukocyte-endothelial adherence and may play a role in airway inflammation in asthma. We studied the effects of blocking VLA-4 (CD49d/CD29) and both LFA-1 (CD11a/CD18) and Mac-1 (CD11b/CD18) airway responses and inflammation in rats. BN rats were sensitized with ovalbumin (OA) subcutaneously and were challenged 14 d later with aerosolized OA. Twelve rats were treated prior to challenge with anti-rat VLA-4 monoclonal antibody (mAb), 10 rats received both anti-LFA-1 and anti-Mac-1 mAb, and 14 rats received a control mAb. The pulmonary resistance (RL) was measured for 8 h after challenge. The inflammatory response was evaluated by bronchoalveolar lavage (BAL) and by measuring the lung and airway inflammatory cells retrieved by enzymative dispersion. The early response was significantly decreased in both the anti-VLA-4 group (131% baseline RL) and the anti-LFA-1/Mac-1 group (118%; p < 0.05) compared with the control group (202%). The late response was also significantly decreased in both the anti-VLA-4 (3.7) and anti-LFA-1/Mac-1 (2.6) groups compared with the control group (19.7). The significant differences in bronchoalveolar lavage were a decrease in neutrophils in the LFA-1/Mac-1 group and an increase in macrophages in the anti-VLA-4 group.(ABSTRACT TRUNCATED AT 250 WORDS)

Airway Resistance↗

Leukotrienes in bile during the early and the late airway responses after allergen challenge of sensitized rats.

The Brown Norway rat produces high levels of IgE in response to active immunization and develops both early and late airway constrictor responses after subsequent allergen challenge. We have used this model of allergic asthma to investigate the temporal relationship between the in vivo synthesis of peptidoleukotrienes (peptido-LTs) and the late response. Brown Norway rats that had been sensitized by injection of ovalbumin 2 to 3 wk prior to the commencement of the experiment were subjected to bile duct cannulation and tracheal intubation. The rats were challenged 2 h later by intratracheal instillation of ovalbumin. Lung resistance was measured before and at frequent intervals after antigen challenge. Biliary peptido-LTs (LTC4, LTD4, LTE4, and N-acetyl-LTE4) were measured by a combination of high pressure liquid chromatography and radioimmunoassay in bile samples collected for a period of 1 h before instillation of ovalbumin, and between zero and 1 h, 1 and 4 h, 4 and 6 h, and 6 and 8 h, subsequently. All of the 10 rats subjected to antigen challenge developed early responses. Of these, six also developed late responses, whereas two died about 1 h after challenge. The levels of peptido-LTs excreted in bile between 4 and 8 h after antigen challenge (corresponding in time to the late responses) were about four times higher in the ovalbumin-instilled rats that developed late responses (n = 6) than in the ovalbumin-sensitized control rats that had been subjected to instillation of saline (n = 6; p < 0.02).(ABSTRACT TRUNCATED AT 250 WORDS)

Allergens↗

Inflammatory cell populations in the airways and parenchyma after antigen challenge in the rat.

We examined the effects of sensitization and antigen challenge on the cellular populations retrieved from the large airways (LA) (generations zero to 5 approximately) and small airways and parenchyma (S/P) of the rat. Male Brown-Norway rats, 7 to 8 wk of age, were either actively sensitized to ovalbumin (n = 24) or sham-sensitized to saline (n = 9), and, 14 days later, they were anesthetized with urethane, intubated endotracheally, and challenged. Aerosols of ovalbumin (5% wt/vol in saline for 5 min) or saline were administered to 12 and six rats, respectively, and measurements of pulmonary resistance (RL) were made for 8 h. The early airway response (ER) was calculated as the highest value of RL in the first hour after challenge, and the late response (LR) was calculated as an increase in RL to greater than 200% of the baseline value in the 4- to 8-h period after challenge. Rats were killed by exsanguination, LA were separated from S/P, and cells were isolated after tissue mincing and digestion with collagenase. Total and differential cell counts and lymphocyte subsets were determined. Antigen challenge significantly increased the cellular yield (mostly neutrophils) from the LA and S/P. Animals with a LR had a lower total cellular yield from the LA and S/P than did animals without a LR. The animals with a LR also had a lower yield of eosinophils and lymphocytes from the S/P than did animals challenged with saline alone. Cellular yields were not lower in the animals with an isolated ER after antigen challenge.(ABSTRACT TRUNCATED AT 250 WORDS)

Airway Resistance↗

Effect of dexamethasone on airway inflammation and responsiveness after antigen challenge of the rat.

The purpose of this study was to examine the effects of dexamethasone on airway responsiveness and lung inflammation of rats at 8 h, 32 h, and 7 d after allergen challenge. Brown-Norway male rats, 7 to 8 wk old, were actively sensitized to ovalbumin (OA) and challenged 14 d later. The rats were divided into a control group (n = 31) and a test group (n = 34) that received dexamethasone (DEXA) (0.3 mg/kg intraperitoneally) 14 h and 2 h before saline or OA challenge. For challenge, rats were anesthetized with pentobarbital and intubated endotracheally. Aerosols of OA (5% wt/vol in saline) were administered for 5 min. Responsiveness to inhaled aerosols of methacholine and the total and differential leukocyte counts in the large airways (generations 0 to 5), small airways, and parenchyma isolated by tissue mincing and digestion were measured at 8 h, 32 h, and 7 d after OA challenge. The cellular influx into the airways and parenchyma was highest at 8 h and decreased progressively over 7 d. DEXA significantly inhibited the cellular influx after allergen challenge. At 8 h, cellular return from the large airways was 3.61 +/- 0.5 x 10(6) (controls) versus 1.0 +/- 0.2 x 10(6) (DEXA), and from the small airways and parenchyma was 31.7 +/- 2.8 x 10(6) (controls) versus 21.9 +/- 2.9 x 10(6) (DEXA) (p < 0.05). The differences were attributable mostly to decreases in neutrophils in DEXA-treated animals. In control animals, neutrophil yield fell between 8 and 32 h, whereas eosinophils and 32 h, whereas eosinophil and lymphocyte counts increased.(ABSTRACT TRUNCATED AT 250 WORDS)

Aerosols↗

Depletion of OX-8 lymphocytes from the blood and airways using monoclonal antibodies enhances the late airway response in rats.

Recent evidence supports a role for T lymphocytes in allergic airway responses. We hypothesized that reducing blood T suppressor cells (Ts) might increase the late airway response (LR). Sprague-Dawley (SD) rats were sensitized with ovalbumin (OA). On days 8, 10, and 12, post-sensitization test SD (n = 14) received monoclonal antibody intravenously (OX-8; 1 mg) specific to rat Ts. Controls received saline (n = 7) or mouse ascites IgG (n = 7). On day 14, animals were challenged with OA aerosol (5% wt/vol) for 5 min, lung resistance was recorded for 8 h (n = 18) and bronchoalveolar lavage was performed. The LR was determined from the area under the lung resistance vs time curve from 75 to 480 min after challenge. In the remaining 10 rats, airway lymphocyte subsets were measured 8 h after OA aerosol challenge in minced and digested lungs. A decrease in percentage of blood and airway Ts, respectively, in test animals was observed vs controls (blood: 6.27 +/- 0.84 vs 32.95 +/- 1.94, P < 0.001); (airway: 5.05 +/- 0.66 vs 24.5 +/- 3.05, P < 0.02). Blood and airway helper T lymphocytes did not differ between test and control animals. The LR was significantly increased in test (22.89 +/- 3.92) vs controls (4.22 +/- 2.18, P < 0.001). Bronchoalveolar lavage macrophages, neutrophils and lymphocytes, and serum OA-specific IgE were also significantly elevated (P < 0.05) in test animals. We conclude that Ts play an important role in attenuating the LR in SD rats.

Aerosols↗

The relationship between late asthmatic responses and antigen-specific immunoglobulin.

The aim of this study was to examine the relationships between allergen-induced early and late airway responses and antigen-specific IgE, IgG, and lymphocyte subsets in blood and bronchoalveolar lavage (BAL). Brown Norway rats were sensitized at 7 weeks of age with ovalbumin (1 mg s.c.) with use of Bordetella pertussis as an adjuvant. Three weeks after sensitization, animals were anesthetized and challenged with an aerosol of ovalbumin (5% wt/vol in saline) for 5 minutes. Each animal was studied for 8 hours with repeated measurements of lung resistance. Blood was obtained at 0, 1, 2, and 3 weeks before ovalbumin challenge. Ovalbumin-specific IgE and IgG were determined by ELISA. No specific antibody was detectable before sensitization. Ovalbumin-specific IgE and IgG rose between 1 to 2 weeks after sensitization and peaked at 3 weeks. The IgE level did not correlate with the magnitude of either the early or the late responses. In a similar manner no correlation existed between the magnitude of specific IgG and the late response. However, a significant inverse correlation (r = -0.73; p < 0.01) occurred between specific IgG and the early response. No correlation occurred between the ratio of helper (W3/25 +) to suppressor (OX-8 +) lymphocytes in blood and BAL and airway responses to allergen. The size of the early and late responses were correlated, suggesting a common stimulus. Despite the blunting of the early response by repeated sensitization the late response was unaffected, suggesting that the factors that determine the physiologic expression of the early and late responses are different.

Animals↗

Extracellular ATP stimulates elastase secretion from human neutrophils and increases lung resistance and secretion from normal rat airways after intratracheal instillation.

The effect of ATP on intracellular Ca2+ levels and elastase secretion in isolated normal human peripheral blood neutrophils was investigated as was its in vivo effect on lung resistance and mucous secretion. ATP (10(-5) M) increased [Ca2+]i from 61 +/- 3 to 165 +/- 15 nM in nonactivated neutrophils; elastase secretion was increased by 40% from nonactivated neutrophils but was unaffected in fMLP (10(-5) M) activated cells. Instillation of ATP (10(-5) and 10(-3) M) into the airways of brown Norway rats increased both lung resistance and secretion. These findings suggest that aerosolization of ATP into the cystic fibrosis-affected bronchial tree might be hazardous in terms of enhancement of parenchymal damage, which would result from neutrophil elastase release, and in terms of impaired respiratory lung function.

Adenosine Triphosphate↗

Effect of interleukin-2 on the airway response to antigen in the rat.

To evaluate the hypothesis that lymphocyte stimulation can modify the bronchoconstrictive response to inhalational challenge with an allergen, we administered interleukin-2 (IL-2), an important lymphokine in lymphocyte activation and proliferation, to actively sensitized rats. Brown Norway rats received either human recombinant IL-2 (n = 8) or its vehicle (n = 7) twice a day from the ninth to the fourteenth day after active sensitization to ovalbumin (OA) and were challenged with an aerosol of OA. Lung resistance (RL) during the early response increased to a maximum of 698 +/- 230% and 180 +/- 26% of baseline values in the animals receiving IL-2 and vehicle, respectively (p less than 0.025). The late response was threefold greater in IL-2-treated than in vehicle-treated animals (p = 0.01). IL-2 increased OA-specific IgG levels in the serum, but it did not significantly affect total or specific IgE levels. IL-2 caused an inflammatory infiltrate around the airways with significant increases in eosinophils, lymphocytes, and mast cells prior to antigen challenge. Our results indicate that stimulation of cell-mediated immunity can affect airway responsiveness to antigen.

Animals↗