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Biomedical subjects

M D Inman

Publications and source records attributed to M D Inman.

At least 37 records · Page 2Linked to original sources

Protection against methacholine bronchoconstriction to assess relative potency of inhaled beta2-agonist.

The purposes of this study were to estimate the relative dose potency (RP) of two formulations of salbutamol pressurized metered-dose inhalers (Proventil-HFA and Ventolin-CFC MDIs) to protect against methacholine bronchoconstriction, to validate this method and provide recommendations. The protective effects of 100-, 200-, and 400-micrograms doses of Proventil-HFA were compared with the same doses of Ventolin-CFC in 18 adult asthmatics (mean FEV1, 92% predicted; mean baseline PC20 methacholine, 1.8 mg/ml), in a dose-level blind, balanced, eight-period, crossover, placebo-controlled study. The log-transformed PC20 values after each dose of the drugs were compared by repeated-measures analysis of variance (ANOVA). A significant dose-effect was present (p < 0.0001). Using the Finney assay, the RP of Proventil-HFA compared with Ventolin-CFC was 1.08 (90% CI, 0.81-1.46) (80% power). This was also estimated using a nonlinear Emax model to validate the Finney method. The most precise estimate of RP was obtained with the comparison between 100- and 200-micrograms doses (RP, 1.00; 90% CI, 0.77-1.31). There were no adverse events resulting from the drugs or methacholine. We conclude that Proventil-HFA salbutamol is bioequivalent to Ventolin-CFC salbutamol. Bronchoprotection to methacholine is a valid method of demonstrating bioequivalence. By this method, 100- and 200-micrograms doses of salbutamol inhalations from an MDI will suffice.

Administration, Inhalation↗

Allergen-induced increase in airway responsiveness, airway eosinophilia, and bone-marrow eosinophil progenitors in mice.

Increases in bone-marrow (BM) inflammatory cell progenitors are associated with allergen-induced airway hyperresponsiveness and inflammation in asthmatics and dogs. Here, for the first time, we compare the time course of airway hyperresponsiveness, inflammation, and marrow progenitor responses in a mouse model of airway allergen challenge. Sensitized BALB/c mice were studied at 2, 12, 24, 48, and 72 h after intranasal ovalbumin or saline challenges. Outcome measurements included airway responsiveness, airway inflammation as assessed via bronchoalveolar lavage (BAL) and lung tissue sections, and BM eosinophil colony-forming units (Eo-CFU) as enumerated using a semisolid culture assay with optimal concentrations of interleukin-5. We observed significant increases in BAL fluid eosinophils, neutrophils, lymphocytes, and macrophages by 2 h after the second of two intranasal allergen challenges (P < 0.05). Significant increases in airway responsiveness or BM Eo-CFU were observed at 24 h and persisted until 48 h after the second challenge (P < 0.05). Airway inflammation, including eosinophils, persisted until at least 72 h (P < 0.05). We observed that allergen-induced airway eosinophilia is accompanied by increases in BM eosinophil progenitors, indicating that in this model, increased eosinophil production involves an expansion of the relevant stem-cell population. These findings support the use of this model to explore the mechanisms of increased eosinopoiesis observed in human asthma.

Allergens↗

Interleukin-10 gene transfer to the airway regulates allergic mucosal sensitization in mice.

The objective of this study was to investigate the effect of airway gene transfer of interleukin (IL)-10, a cytokine with potent anti-inflammatory and immunoregulatory activities, on allergic mucosal sensitization. We used a recently described murine model that involves repeated exposures to aerosolized ovalbumin (OVA), daily for 10 d, in the context of granulocyte macrophage colony-stimulating factor (GM-CSF) expression in the airway environment achieved by intranasal delivery of a replication-deficient adenovirus carrying the GM-CSF transgene. The resulting inflammatory response was characterized by a T-helper 2 cytokine profile and marked airway eosinophilia. After complete resolution of the inflammatory response (Day 28), a single exposure to OVA reconstituted airway eosinophilia and induced airway hyperresponsiveness. We show that concurrent expression of IL-10 inhibited GM-CSF-driven OVA-specific inflammation in a dose-dependent manner. Specifically, IL-10 decreased the number of mononuclear cells, neutrophils, and eosinophils in the bronchoalveolar lavage fluid (BALF). Histologic evaluation of the tissue corroborated the findings in the BALF. Concurrent expression of IL-10 at the time of mucosal sensitization abrogated both the cellular and physiologic recall responses in vivo. Studies in interferon (IFN)-gamma knockout mice demonstrated that prevention of airway eosinophilia by IL-10 was IFN-gamma-independent and that expression of IL-10 was associated with decreased levels of IL-4, IL-5, and tumor necrosis factor-alpha in the BALF. Flow cytometric analysis of dispersed lung cells showed that expression of IL-10 in the airway reduced the absolute number of Class II major histocompatibility complex (MHC)(+)/CD11c(+) (dendritic cells) and Class II MHC(+)/Mac-1(bright) (macrophages) cells expressing the costimulatory molecules B7.1 and B7.2 by 30%. However, IL-10 coexpression did not prevent expansion of CD4 and CD8 T cells or expression of the early activation marker CD69 on T cells. Thus, airway gene transfer of IL-10 altered the immune response to OVA in a way that resulted in inhibition of airway inflammation. These findings suggest that development of an immunoregulatory strategy based on IL-10, alone or in combination with GM-CSF, warrants further consideration.

Adenoviridae↗

Circulating, but not local lung, IL-5 is required for the development of antigen-induced airways eosinophilia.

IL-5 is induced locally in the lung and systemically in the circulation during allergic airways eosinophilic inflammation both in humans and experimental animals. However, the precise role of local and systemic IL-5 in the development of allergic airways eosinophilia remains to be elucidated. In our current study, we demonstrate that compared with their IL-5(+/+) counterparts, IL-5(-/-) mice lacked an IL-5 response both in the lung and peripheral blood, yet they released similar amounts of IL-4, eotaxin, and MIP-1alpha in the lung after ovalbumin (OVA) sensitization and challenge. At cellular levels, these mice failed to develop peripheral blood and airways eosinophilia while the responses of lymphocytes, neutrophils, and macrophages remained similar to those in IL-5(+/+) mice. To dissect the relative role of local and systemic IL-5 in this model, we constructed a gene transfer vector expressing murine IL-5. Intramuscular IL-5 gene transfer to OVA-sensitized IL-5(-/-) mice led to raised levels of IL-5 compartmentalized to the circulation and completely reconstituted airways eosinophilia upon OVA challenge, which was associated with reconstitution of eosinophilia in the bone marrow and peripheral blood. Significant airways eosinophilia was observed for at least 7 d in these mice. In contrast, intranasal IL-5 gene transfer, when rendered to give rise to a significant but compartmentalized level of transgene protein IL-5 in the lung, was unable to reconstitute airways eosinophilia in OVA-sensitized IL-5(-/-) mice upon OVA-challenge, which was associated with a lack of eosinophilic responses in bone marrow and peripheral blood. Our findings thus provide unequivocal evidence that circulating but not local lung IL-5 is critically required for the development of allergic airways eosinophilia. These findings also provide the rationale for developing strategies to target circulating IL-5 and/or its receptors in bone marrow to effectively control asthmatic airways eosinophilia.

Adenoviridae↗

The utility of methacholine airway responsiveness measurements in evaluating anti-asthma drugs.

BACKGROUND: Measurements of airway responsiveness are frequently used to evaluate anti-asthma drugs. OBJECTIVE: This study investigated the utility of methacholine airway responsiveness measurements in evaluating anti-asthma medications, both in terms of a bronchoprotective effect and the ability to attenuate allergen-induced methacholine airway hyperresponsiveness. METHODS: Methacholine airway responsiveness was measured as PC20 on two occasions (separated by 35+/-17 days, mean +/- SD) in 40 subjects with mild, stable asthma. Additional subjects had PC20 measurements made before and after administration of either inhaled salbutamol (200 microg) (n = 20) or allergen inhalation challenge (n = 31). RESULTS: The reproducibility of the methacholine PC20 with this method was high (intraclass correlation coefficient = 0.94). The average shift in PC20 after salbutamol was 4.11 doubling concentrations (SD = 1.08). On the basis of these results, a sample size of 12 subjects would be required to demonstrate a 1 doubling concentration difference in the bronchoprotective effect of two drugs with a 90% power. The average shift in PC20 after allergen was 1.29 doubling concentrations. On the basis of these results and an estimated SD of 0.96, a sample size of 24 subjects would be required to demonstrate that a drug is effective in attenuating 50% of allergen-induced airway hyperresponsiveness with a 90% power. CONCLUSION: These results confirm the high reproducibility of methacholine PC20 measurements in subjects with mild, stable asthma and demonstrate its utility in evaluating the effects of anti-asthma drugs.

Administration, Inhalation↗

Hemopoietic mechanisms in allergic airway inflammation.

The bone marrow actively participates in the production of IgER-positive inflammatory cells (eosinophils, basophils and mast cells), which are typically recruited to tissues in atopic individuals. Understanding the signalling between the tissue and the bone marrow at the molecular level may well open up new avenues of therapy for allergic inflammation.

Asthma↗

Changes in bone marrow inflammatory cell progenitors after inhaled allergen in asthmatic subjects.

Increases in inflammatory cell progenitors, particularly eosinophil/basophil colony-forming cells (Eo/B-CFU), occur in peripheral blood after allergen provocation. The role of bone marrow (BM) in these reactions is unclear. We examined the effect of allergen challenge on human bone marrow progenitor cell growth. Fifteen asthmatic subjects, eight dual responders (DR) and seven isolated early responders (IER), were challenged with inhaled allergen. BM aspirates were taken before and 24 h after challenge and progenitors were enumerated by a colony-forming assay. Eo/B-CFU numbers increased in both groups after allergen challenge (p < 0.0001). For DR, the increases were significant for BM incubated with optimal GMCSF and IL-5, but not with IL-3. For IER, the increases were significant for all three cytokines tested. At a suboptimal concentration of IL-5, there was a significant increase in the number of Eo/B-CFU after allergen in the DR, from 5.25 +/- 1.2 to 9.68 +/- 2.1 per 2.5 x 10(5) cells plated (p < 0.01), which was not demonstrated in the IER (p = 0.94). The responses at this concentration of IL-5 were different between groups (p < 0.05). These results demonstrate that inhaled allergen increases BM Eo/B-CFU, and that the bone marrow of dual responders is more responsive to IL-5 after allergen.

Administration, Inhalation↗

Allergen challenge increases cell traffic between bone marrow and lung.

Increases in inflammatory-cell progenitors have been demonstrated in the bone marrow (BM) after inhalation of Ascaris suum in dogs at the time of allergen-induced airway hyperresponsiveness (AHR). The aim of this study was to evaluate the effect of allergen challenge on trafficking of inflammatory cells and their progenitors from the BM to the lung, using a marker of proliferating cells, bromodeoxyuridine (BrdU). BrdU is a thymidine analogue taken up by the DNA of dividing cells, and can be detected with immunohistochemistry (IHC). The development of AHR was assessed through acetylcholine (ACh) airway responsiveness before and after allergen inhalation. Two groups of dogs were matched for the degree of AHR after a screening allergen challenge. On the study day, one group inhaled allergen (n = 8) and one group inhaled diluent (n = 8). All dogs received equal bolus injections of BrdU before and at 5 h after challenge. Blood samples were taken before challenge and at 5 h and 24 h after challenge, and BM aspirate and bronchoalveolar lavage (BAL) samples were taken 24 h after challenge. BrdU-positive cells were detected in cytospin preparations of these samples, using IHC. Allergen inhalation caused AHR (P < 0.05) at 24 h after allergen challenge, and also an increase in BrdU-positive cells in blood, which was 5.7 +/- 0.6% (mean +/- SEM) after allergen challenge and 2.5 +/- 0.7% after diluent (P < 0.005); in BM the increase in BrdU-positive cells was 27.0 +/- 3.4% after allergen challenge and 18.9 +/- 3.2% after diluent (P = 0.1); and in BAL the increase was 3.2 +/- 0.4% after allergen challenge and 0.8 +/- 0.3% after diluent (P < 0.005). There was a significant correlation between the number of BAL neutrophils and the percentage of BrdU-positive BAL cells (r2 = 0.54, P < 0.05). These results demonstrate an allergen-induced increase in proliferating cells, probably in the BM, and indicate that such cells traffic through the circulation into the lungs in response to allergen inhalation.

Acetylcholine↗

Increases in airway eosinophils and interleukin-5 with minimal bronchoconstriction during repeated low-dose allergen challenge in atopic asthmatics.

Repeated low-dose allergen challenge increases airway hyperresponsiveness in atopic asthmatics. However, it is not known whether low-dose allergen challenge increases airway inflammation. Eight atopic asthmatics were enrolled in a controlled, cross-over study to evaluate the effect and time course of repeated low-dose allergen challenge on airway inflammation and hyperresponsiveness. The dose of allergen to reduce forced expiratory volume in one second (FEV1) by approximately 5% was selected in a screening allergen challenge. The subjects then were challenged for five consecutive days with either diluent or the selected low-dose of allergen. Methacholine airway hyperresponsiveness (PC20,meth) was measured and sputum induced on days 1, 3 and 5 of the repeated challenge, and then 1 day and 3 days after the last challenge. Repeated low-dose allergen challenge caused small reductions in FEV1, but increased airway eosinophils and interleukin (IL)-5, airway hyperresponsiveness, asthma symptoms and beta2-agonist use, all of which peaked on days 3 or 5 of the challenge. The mean (SEM) percentage sputum eosinophils was 21.2 (0.7)% after allergen versus 3.9 (0.1)% after diluent (p<0.001); percentage EG2+ cells were 13.4 (03)% after allergen versus 1.1 (0.04)% after diluent (p<0.01) and geometric mean (GSEM) eosinophil cationic protein (ECP) was 1061.8 (1.6) microg x L(-1) after allergen versus 447.03 (1.2) microg x L(-1) after diluent (p<0.05). Geometric mean (GSEM) IL-5 was 71.4 (1.4) pg x mL(-1) after allergen versus 18.4 (1.04) pg x mL(-1) after diluent (p<0.01). All the changes had resolved by 3 days after the last challenges. The study demonstrated that repeated inhalation of a low-dose of allergen causes airway eosinophilia and increases in interleukin-5, associated with airway hyperresponsiveness, and mild worsening of asthma control, without the development of marked acute bronchoconstriction or the development of late responses.

Adult↗

Prolonged protection against exercise-induced bronchoconstriction by the leukotriene D4-receptor antagonist cinalukast.

OBJECTIVES: The degree and duration of protection against exercise-induced bronchoconstriction afforded by three doses of a specific leukotriene D4 receptor antagonist, cinalukast, were assessed after an initial dosing and after 1 week of therapy. METHODS: A placebo-controlled crossover study was performed in eight male patients who had mild, stable asthma and exercise-induced bronchoconstriction. Treatment consisted of four 7-day periods of placebo and three dose levels of the drug (10, 50, and 200 mg administered orally). Exercise challenge was performed at 2 hours and 8 hours after treatment on the first and seventh treatment days. The response was measured as the area under the FEV1-time effect curve (AUEC). RESULTS: On the first day of treatment, the mean (+/- SEM) AUEC at 2 hours was 24.2 +/- 3.3 L.min after placebo and was 5.5 +/- 2.2 L.min, 6.3 +/- 2.7 L.min, 3.3 +/- 3.8 L.min after 10 mg, 50 mg, and 200 mg, respectively (p < 0.05 for all values compared with placebo). The AUEC at 8 hours on the first day was 25.1 +/- 4.4 L.min after placebo and was 6.8 +/- 4.1 L.min, 11.2 +/- 2.5 L.min, and 5.0 +/- 2.8 L.min after 10 mg, 50 mg, and 200 mg, respectively (p < 0.05 for all values compared with placebo). The protection afforded by 10 mg of cinaluicast was lost after 7 days of treatment but persisted with 50 mg and 200 mg doses. CONCLUSION: Orally administered cinalukast provides at least 8 hours of protection against exercise-induced bronchoconstriction. This protection is lost with regular treatment for 1 week for the lowest dose studied.

Administration, Oral↗

The effect of treatment with budesonide or PGE2 in vitro on allergen-induced increases in canine bone marrow progenitors.

Increased bone marrow granulocyte-macrophage colony forming units (GM-CFU) in dogs developing allergen-induced airway hyperresponsiveness can be accounted for by a factor(s) present in serum following the allergen challenge. The present study evaluated whether in vitro treatment of bone marrow with budesonide or prostaglandin (PG)E2, prevents allergen-induced bone marrow stimulation. Eight dogs were studied after allergen and diluent inhalation challenges. Budesonide (10[-7] M) or PGE2 (10[-6] M) was added to bone marrow aspirated 24 h after challenge. Budesonide or PGE2 was also added to bone marrow aspirated before challenge, to which serum taken 24 h after challenge was subsequently added. Non-adherent mononuclear bone marrow cells were incubated in the presence of the serum and granulocyte/macrophage colony stimulating factor (GM-CSF), granulocyte stimulating factor (G-CSF), or stem cell factor (SCF), and the number of GM-CFU counted. Allergen-induced increases in the number of GM-CFU in bone marrow aspirated 24 h after allergen (P < 0.001) were not attenuated by budesonide or PGE2 treatment (P > 0.05). However, GM-CFU increases in bone marrow aspirated before challenge and incubated with post-allergen challenge serum (P < 0.001) were blocked by either budesonide or PGE2 (P < 0.001). These findings demonstrate that budesonide and PGE2 can act directly on the bone marrow, preventing allergen-induced increases in inflammatory cell progenitor production. This suggests that the bone marrow must be considered as a possible site of action for drugs which attenuate allergen-induced asthmatic responses.

Allergens↗

Bone marrow contribution to eosinophilic inflammation.

Allergen-induced bone marrow responses are observable in human allergic asthmatics, involving specific increases in eosinophil-basophil progenitors (Eo/B-CFU), measured either by hemopoietic assays or by flow cytometric analyses of CD34-positive, IL-3R alpha-positive, and/or IL-5-responsive cell populations. The results are consistent with the upregulation of an IL-5-sensitive population of progenitors in allergen-induced late phase asthmatic responses. Studies in vitro on the phenotype of developing eosinophils and basophils suggest that the early acquisition of IL-5R alpha, as well as the capacity to produce cytokines such as GM-CSF and IL-5, are features of the differentiation process. These observations are consistent with findings in animal models, indicating that allergen-induced increases in bone marrow progenitor formation depend on hemopoietic factor(s) released post-allergen. The possibility that there is constitutive marrow upregulation of eosinophilopoiesis in allergic airways disease is also an area for future investigation.

Allergens↗

The role of the bone marrow in allergy and asthma.

The above studies have begun to address the fundamental question of the mechanisms of bone marrow involvement and response to allergen challenge in allergic asthmatics. Further studies in this area should complement our investigations in human asthma--which suggest that a particular bias toward differentiation of Eo-Baso progenitors characterizes the atopic state--as well as our findings in the dog model of allergen-induced airway hyperresponsiveness, which indicate that the bone marrow responds to inhalation of allergen or corticosteroids. Taken in the context of previous indications that IgE and bronchial responsiveness may both be transferrable through bone marrow transplantation (109), these findings indicate a physiologic role for the bone marrow in allergic inflammation. Likewise, these concepts provide a basis for making certain predictions regarding management and novel therapeutic interventions in atopy and asthma.

Animals↗

The effect of regular inhaled albuterol on exercise-induced bronchoconstriction.

Pretreatment with inhaled beta 2-agonists is often recommended for the prevention of exercise-induced bronchoconstriction. Regular treatment with inhaled beta 2-agonists has been associated with worsened baseline airway caliber and increased airway responsiveness. In this study, we have investigated the effects of regular inhaled albuterol on the severity of exercise-induced bronchoconstriction using a double-blind, placebo-controlled, randomized, crossover design. Ten subjects inhaled either albuterol or placebo (2 x 100 micrograms, four times per day) for 7 d. On the eighth and ninth days of treatment periods, subjects performed 5-min constant work rate cycle ergometry exercise challenges after inhaling 200 micrograms of placebo (eighth day) or albuterol (ninth day). Forced expired volume in 1 s (FEV1) was measured on arrival in the laboratory as well as before and for 1 h after exercise. One week of regular inhaled albuterol compared with placebo resulted in: (1) a lower baseline FEV1 (mean difference, 230 ml) (p = 0.02); (2) a lower minimum postexercises FEV1 without inhaled albuterol pretreatment (mean difference, 390 ml; range, -50 ml to 1,250 ml) (p = 0.01); (3) a lower minimum postexercise FEV1 with inhaled albuterol pretreatment (p < 0.01). The smallest degree of exercise-induced bronchoconstriction occurred after a week of regular placebo and pretreatment with inhaled albuterol immediately before exercise. Inhalation of albuterol four times daily for 1 wk worsens exercise-induced bronchoconstriction; however, it remains extremely effective when used immediately before exercise for preventing bronchoconstriction.

Administration, Inhalation↗

Allergen-induced increase in bone marrow progenitors in airway hyperresponsive dogs: regulation by a serum hemopoietic factor.

We have previously reported that bone marrow progenitors in dogs, specifically granulocyte-macrophage colony-forming units (GM-CFU), increase developing airway hyperresponsiveness after inhalation of the allergen Ascaris suum. In the present study, we evaluated whether this increased marrow hemopoietic activity can be stimulated by a factor in serum after allergen challenge. Serum samples taken from dogs prior to and 20 min, 2 h, and 24 h after Ascaris or diluent challenge were added to bone marrow cells aspirated prior to challenge, and GM-CFU measured. A second bone marrow aspirate was performed 24 h after challenge. Nonadherent mononuclear bone marrow cells were incubated for 8 days in the presence of the serum and recombinant canine hemopoietic cytokines (stem cell factor, granulocyte colony-stimulating factor, GM colony-stimulating factor). Eight dogs that developed (airway responders) and eight dogs that did not develop (airway nonresponders) allergen-induced airway hyperresponsiveness were studied. Allergen inhalation increased bone marrow GM-CFU in response to all three growth media in vitro for the airway responder (P < 0.05) but not airway nonresponder dogs. The 24-h serum, taken from the airway responder but not the airway nonresponder dogs, produced a similar increase in granulocyte progenitors when added to the bone marrow taken before allergen inhalation (P < 0.05). These findings demonstrate that bone marrow-derived granulocyte progenitors are upregulated by a factor that can be shown to be present in serum 24 h after allergen challenge in dogs that develop allergen-induced airway hyperresponsiveness. Whether in vivo stimulation of bone marrow inflammatory cell production is necessary for the development of allergen-induced airway hyperresponsiveness remains to be proven.

Acetylcholine↗

Reproducibility of allergen-induced early and late asthmatic responses.

BACKGROUND: Constant-dose allergen inhalation challenges are frequently used to examine the effect of antiasthma drugs on the allergen-induced early and late asthmatic responses. The end-point measurements in such studies are the maximal early and late percent decreases in the forced expiratory volume in 1 second (FEV1). OBJECTIVE: Our purpose was to observe the reproducibility and to determine the sample sizes required for such studies. METHODS: Twenty-eight subjects with allergen-induced early and late responses were studied with two constant-dose allergen challenges separated by 2 to 12 weeks. The early response was measured as the maximum percent decrease in FEV1 during the first 2 hours and the late response as the maximum percent decrease in FEV1 between 3 to 7 hours. RESULTS: The mean +/- SEM early responses were 23.1% +/- 1.0% and 24.7% +/- 2.0%, whereas the mean late responses were 23.3% +/- 2.0% and 24.5% +/- 2.2%. Reproducibility of measurements were such that fewer than eight subjects are required, to show 50% attenuation of either the early or late response (with 90% power). CONCLUSIONS: The method of constant-dose allergen challenge is a sensitive tool for detecting changes in early and late asthmatic responses after the use of antiasthma medication.

Administration, Inhalation↗

U46619-induced bronchoconstriction in asthmatic subjects is mediated by acetylcholine release.

Thromboxane A2 (TxA2) has been implicated in the pathogenesis of airway hyperresponsiveness. U46619 is a chemical that mimics the effects of TxA2. Both TxA2 and U46619 have been demonstrated to act presynaptically to enhance the release of acetylcholine from cholinergic nerves in canine airway smooth muscle. The purpose of this study was to determine whether the bronchoconstriction caused by inhaled U46619 in asthmatic subjects is caused by acetylcholine release. Airway responsiveness to inhaled methacholine and U46619 was measured in eight subjects with mild stable asthma and expressed as the provocation concentration causing a 20% fall in FEV1 (PC20). Subjects were studied on 4 d, each separated by 3 days. On each study day, subjects inhaled a cholinergic antagonist ipratropium bromide (80 micrograms), or placebo, and 1 h later, increasing doubling doses of methacholine or U46619 were inhaled, and a PC20 value was obtained. The mean methacholine PC20 on the placebo day was 1.42 mg/ml (%SEM, 1.47) and after treatment with ipratropium bromide this increased to 127.33 mg/ml (%SEM, 1.29) (p = 0.0001), a mean 89.4-fold (%SEM, 1.19) increase. The mean U46619 PC20 on the placebo day was 2.09 micrograms/ml (%SEM, 1.56) and after treatment with ipratropium bromide this increased to 47.54 micrograms/ml (%SEM, 1.43) (p = 0.0001), a mean 22.8-fold (%SEM, 1.36) increase. The ability of ipratropium bromide to attenuate responsiveness to the noncholinergic mediator histamine was also investigated in six subjects. The mean increase in histamine PC20 was a 3.09-fold (%SEM, 1.17) increase, significantly less than the increase seen for both methacholine and U46619 (p < 0.001).(ABSTRACT TRUNCATED AT 250 WORDS)

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