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Biomedical subjects

A J Frew

Publications and source records attributed to A J Frew.

At least 19 recordsLinked to original sources

T cell receptor (TCR) Vbeta gene usage in bronchoalveolar lavage and peripheral blood T cells from asthmatic and normal subjects.

T cells are thought to play an important regulatory role in asthma, but little is known about the T cell repertoire of the human lung or whether asthma is associated with any specific repertoire changes. Flow cytometry and MoAbs to TCR VB (TCRBV) families were used to quantify bronchoalveolar lavage (BAL) and blood T cells from normal and atopic individuals. Clonality was then assessed by polymerase chain reaction (PCR) amplification of cDNA and gene scanning using consensus and family-specific TCRBV primers and confirmed by sequence analysis. In addition, blood and BAL T cell populations were studied pre- and post-allergen challenge in four patients with allergic asthma. The majority of TCRBV families detected in blood by MoAb staining were also represented in BAL. While differences between BAL and blood populations were evident in each individual studied, these differences were not consistent between individuals or between CD4+ and CD8+ T cell subpopulations. These results are in broad agreement with other published studies, but in contrast to previous work we found a consistent difference between TCRBV7 family usage in blood and BAL in all individuals studied, and a consistently increased proportion of CD4+ BAL T cells bearing BV5S2/3 in asthmatics only. After allergen challenge, the pattern of TCRBV gene usage was largely unchanged as judged by flow cytometry. Gene scanning of PCR products generated from consensus VB primers revealed polyclonal lymphocyte populations in blood and BAL from all seven atopic individuals: in one normal tested polyclonal populations were found in blood and oligoclonal populations in BAL. Selected families amplified with family-specific primers BV5S2/3, BV6 and BV7 (chosen because of their predominance in BAL compared with blood) were more variable and revealed predominant polyclonal populations in blood and polyclonal or oligoclonal populations in BAL. In one asthmatic patient a clonal BV5S2 family was found in BAL. Following allergen challenge there were no significant changes in polyclonality/oligoclonality/clonality in three cases, but in one case a clonal BV5S2 population was found after challenge, that had not been evident beforehand. The lung T cell repertoire is thus broadly representative of blood T cells, but shows population differences that may result from response to persistent exposure to airborne antigens common to normal and atopic individuals. Oligoclonal TCRBV family expansion appears to be primarily lung-specific but independent of atopic asthma, although our challenge data in one case support the concept that clonal populations may follow local allergen challenge. These data are consistent with selection and amplification of specific T cell families in the lung in response to local antigenic exposure.

Adult

Effects of 0.2 ppm ozone on biomarkers of inflammation in bronchoalveolar lavage fluid and bronchial mucosa of healthy subjects.

Short-term exposure to ozone at peak ambient levels induces neutrophil influx and impairs lung function in healthy humans. In order to investigate the mechanisms contributing to neutrophil recruitment and to examine the role of T-cells in the acute inflammatory response, we exposed 12 healthy humans to 0.2 parts per million (ppm) of ozone and filtered air on two separate occasions for 2 h with intermittent periods of rest and exercise (minute ventilation = 30 L x min(-1)). Fibreoptic bronchoscopy was performed 6 h after the end of exposures. Total protein, tryptase, histamine, myeloperoxidase, interleukin (IL)-8 and growth-related oncogene-alpha (Gro-alpha) were measured and total and differential cell counts were performed in bronchoalveolar lavage (BAL) fluid. Flow cytometry was performed on BAL cells to study total T-cells, T-cell receptors (alphabeta and gammadelta), T-cell subsets (CD4+ and CD8+ cells) and activated T-cell subsets (CD25+). Using immunohistochemistry, neutrophils, mast cells, total T-cell numbers, T-cell subsets, CD25+ T-cells and leukocyte endothelial adhesion molecules including P-selectin, E-selectin, intercellular adhesion molecule (ICAM)-1 and vascular adhesion molecule (VCAM)-1 were quantified in the bronchial biopsies. Paired samples were available from nine subjects. Following ozone exposure there was a threefold increase in the proportion of polymorphonuclear neutrophils (PMNs) (p=0.07) and epithelial cells (p=0.05) in BAL fluid. This was accompanied by increased concentrations of IL-8 (p=0.01), Gro-alpha (p=0.05) and total protein (p=0.058). A significant positive correlation was demonstrated between the two chemokines and proportion of PMNs in BAL fluid. After ozone exposure there was a significant decrease in the CD4/CD8 ratio (p=0.05) and the proportion of activated CD4+ (p=0.01) and CD8+ T-cells (p=0.04). However, no significant changes were demonstrable in any of the inflammatory markers studied in the biopsies. Short-term exposure of healthy humans to 0.2 ppm ozone induced a neutrophil influx in peripheral airways at 6 h post exposure, but no apparent inflammatory response in proximal airways. This response seems to be mediated at least in part by interleukin-8 and growth-related oncogene-alpha.

Adult

Nasal cavity lining fluid ascorbic acid concentration increases in healthy human volunteers following short term exposure to diesel exhaust.

To determine if diesel exhaust (DE) exposure modifies the antioxidant defense network within the respiratory tract lining fluids, a randomized, single blinded, crossover control study using nasal lavage and flexible video bronchoscopy with bronchial and bronchoalveolar lavage was performed. Fifteen healthy, non-smoking, asymptomatic subjects were exposed to filtered air or diluted diesel exhaust (300mg m(-3) particulates, 1.6ppm nitrogen dioxide) for one hour on 2 separate occasions, at least three weeks apart. To examine the kinetics of any DE-induced antioxidant reactions, nasal lavage fluid and blood samples were collected prior to, immediately after, and 5 1/2 hours post exposure. Bronchoscopy was performed 6 hours after the end of DE exposure. Ascorbic acid, uric acid and reduced glutathione (GSH) concentrations were determined in nasal, bronchial, bronchoalveolar lavage and plasma samples. Malondialdehyde (MDA) and protein carbonyl concentrations were determined in plasma and bronchoalveolar lavage samples. Nasal lavage ascorbic acid concentration increased 10-fold during DE exposure [1.02 (0.26-2.09) Vs 7.13 (4.66-10.79) micromol/L(-1)], but returned to basal levels 5.5 hours post-exposure [0.75 (0.26-1.51) micromol/L(-1)]. There was no significant effect of DE exposure on nasal lavage uric acid or GSH concentration. DE exposure did not influence plasma, bronchial wash, or bronchoalveolar lavage antioxidant concentrations and no change in MDA or protein carbonyl concentrations were found. The physiological response to acute DE exposure is an increase in the level of ascorbic acid in the nasal cavity. This response appears to be sufficient to prevent further oxidant stress in the respiratory tract of normal individuals.

Adult

Endobronchial allergen challenge.

LEAC offers a very practical means of studying the pathophysiology of asthma. Despite the local nature of the challenge, LEAC often has a significant effect on FEV1 and may cause short-term destabilization of asthma. In common with other bronchoscopic methods used to study human asthma, samples obtained by LEAC show a considerable degree of variability and it is therefore necessary to use groups of 12-15 subjects to minimize the risk of Type II statistical errors. Comparisons between different studies of allergen exposure are made difficult by a variety of technical considerations. Chief among these are subject selection, the technique used for allergen exposure, the timing of sampling, and the analysis techniques. Dose-response studies in nonasthmatic allergic subjects indicate that the degree of BAL eosinophilia is related to the dose of antigen [17] but there is as yet no agreement on how LEAC might be standardized. Notwithstanding these reservations, local endobronchial allergen challenge has already yielded valuable information on the pathophysiology of asthma and will remain a useful complement to other investigational techniques in the future exploration of this disease.

Allergens

Pattern of usage and somatic hypermutation in the V(H)5 gene segments of a patient with asthma: implications for IgE.

The V(H)5 family contains two functional genes, V5-51 and V(H)32, and appears to be over-represented in IgE antibodies from patients with allergic disease. Previous sequence analysis of V(H)5 gene segments in IgE has revealed a substantial level of somatic hypermutation, with evidence for hotspots. To assess characteristics of V(H)5 gene behavior, V(H)5 gene segments in combination with C mu, C gamma, C alpha, and C epsilon have been amplified from blood B lymphocytes of a patient with atopic asthma. Sequence analysis revealed strong preferential usage of one of the two V(H)5 gene segments (V5-51) by IgM, IgG, and IgA. In contrast, IgE used both genes equally. Levels of somatic mutation were higher following all isotype switches, particularly to IgA. Mutational hotspots were identifiable in all isotypes, leading to several common replacement amino acids. The dominant mutational site in IgM was a common hotspot at Ser31. IgG, IgA, and IgE-derived sequences had mainly common hotspots, with few distinct sites. The results indicate that mutational hotspots are a feature of the V(H)5 gene, are identifiable at an early stage of somatic hypermutation, and are not a unique feature of IgE. Generation of IgE antibodies appears to involve three processes: the preferential use of V(H)5 genes, consistent with superantigen stimulation; the accumulation of somatic mutations in common hotspots, some of which are in complementarity-determining regions (CDR); and the acquisition of non-hotspot mutations in CDR, accounting for approximately 50% of replacement amino acids in these sites, and presumably contributing to affinity maturation.

Adult

Transforming growth factor-beta 1 in asthma. Measurement in bronchoalveolar lavage fluid.

Airway wall remodeling is an established pathological feature in asthma. Its causes are not well understood, but one mediator of potential relevance is transforming growth factor-beta 1 (TGF-beta 1). We have measured levels of immunoreactive TGF-beta 1 in bronchoalveolar lavage (BAL) fluid from clinically stable atopic asthmatics and healthy control subjects. We have also examined the influence of allergen exposure on TGF-beta 1 release in the airways using a segmental bronchoprovocation model, with BAL performed at two time points following endobronchial allergen and sham saline challenges. Basal concentrations of TGF-beta 1 were significantly higher in asthmatics than control subjects (median 8.0 versus 5.5 pg/ml, p = 0.027). Following segmental bronchoprovocation, concentrations of TGF-beta 1 at the allergen- and saline-challenged sites were not significantly different after 10 min, (31.3 versus 25.0 pg/ml, p = 0.78), but after 24 h there were significantly higher TGF-beta 1 concentrations at the allergen-challenged sites (46.0 versus 21.5 pg/ml, p = 0.017). We conclude that basal TGF-beta 1 levels in the airways are elevated in atopic asthma and that these levels increase further in response to allergen exposure. These findings are consistent with the hypothesis that TGF-beta 1 is implicated in airway wall remodeling in asthma.

Adult

The inflammatory effects of 2 ppm NO2 on the airways of healthy subjects.

Nitrogen dioxide (NO2) is a free radical and a common oxidant in polluted air. Here we present data on the time course of inflammation after NO2 exposure, as reflected in bronchial biopsy and airway lavage specimens. Healthy, nonsmoking subjects were exposed to air or 2 ppm NO2 for 4 h in random order on separate occasions. Endobronchial biopsies, bronchial washing (BW), and bronchoalveolar lavage (BAL) were done at 1.5 h (n = 15) or 6 h (n = 15) after exposure. In BW, exposure to NO2 induced a 1.5-fold increase in interleukin-8 (IL-8) (p < 0.05) at 1.5 h and a 2.5-fold increase in neutrophils (p < 0.01) at 6 h. In BAL fluid (BALF), small increases were observed in CD45RO+ lymphocytes, B-cells, and natural killer (NK) cells only. Immunohistologic examination of bronchial biopsy specimens showed no signs of upregulation of adhesion molecules, and failed to reveal any significant changes in inflammatory cells at either time point after NO2 exposure. In summary, NO2 induced a neutrophilic inflammation in the airways that was detectable in BW at 6 h after NO2 exposure. The increase in neutrophils could be related to the enhanced IL-8 secretion observed at 1.5 h after exposure. The absence of adhesion-molecule upregulation or cellular inflammation in mucosal biopsy specimens indicates that the major site of inflammation following exposure to NO2 may be in the smaller airways and not in the alveoli.

Adult

Release of RANTES, MIP-1 alpha, and MCP-1 into asthmatic airways following endobronchial allergen challenge.

We have investigated the presence of regulated on activation, normal T-cell expressed and probably secreted (RANTES), macrophage inflammatory peptide-1 alpha (MIP-1 alpha), and macrophage chemotactic peptide (MCP-1) in the bronchoalveolar lavage fluid (BALF) obtained from normal (n = 7) and stable asthmatic subjects (n = 8), and studied their kinetic release into asthmatic airways following endobronchial allergen challenge (n = 18). Measurements of RANTES, MIP-1 alpha, and MCP-1 in 10 times (10x) concentrated BALF showed that these three chemokines were present in both normal controls and stable asthmatic patients, but no significant difference between the two groups was found in the levels of the three chemokines. However, at 4 h after allergen challenge, BALF levels of RANTES, MIP-1 alpha, and MCP-1 were significantly increased in fluid obtained from the allergen-challenge site when compared with the saline-challenge control site (median: 175 pg/ml versus 11.5 pg/ml, 258 pg/ml versus 88 pg/ml, and 900 pg/ml versus 450 pg/ml, respectively). At 24 h, levels of the three chemokines returned to baseline values. To investigate whether cells in BALF obtained 4 h after allergen exposure release chemokines, they were cultured for 24 h. BALF cells from the allergen site released more RANTES and MCP-1 than those from the saline site, but released similar amounts of MIP-1 alpha. These findings suggest that RANTES, MIP-1 alpha, and MCP-1 may regulate cell trafficking in asthma in response to allergen exposure.

Adult

Airway endothelin levels in asthma: influence of endobronchial allergen challenge and maintenance corticosteroid therapy.

Endothelins (ETs) are 21 amino acid peptides which, in addition to their other properties, are potent bronchoconstrictors. Whilst there is evidence of the involvement of ET in the pathophysiology of chronic asthma, its contribution to the acute allergic response is undefined. To examine this, we have undertaken segmental bronchoprovocation with allergen and saline at separate sites in six atopic asthmatics receiving treatment with bronchodilators only and six atopic asthmatics additionally receiving treatment with inhaled corticosteroids. Each challenged segment was lavaged 10 min after bronchoprovocation and concentrations of immunoreactive ET were measured in bronchoalveolar lavage fluid. In the non-steroid-treated subjects, there were significantly lower ET levels at the allergen-challenged sites compared to the saline-challenged sites (p<0.05). In the steroid-treated subjects, on the other hand, there was no significant difference between the two sites. Levels of ET at the saline-challenged sites were significantly lower in the steroid-treated subjects compared to the non-steroid-treated subjects (p<0.04). These findings do not support the hypothesis that allergen exposure in asthma results in immediate release of endothelin. However, release at later time-points and a role for endothelin in late-phase bronchoconstriction are not excluded.

Adrenal Cortex Hormones

Clinical efficacy of specific immunotherapy to cat dander: a double-blind placebo-controlled trial.

OBJECTIVES: To assess the efficacy of specific immunotherapy with standardized cat dander extract, using objective endpoints and simulated 'natural' exposure to cats. DESIGN: Double-blind, randomized, placebo-controlled study carried out at a UK Allergy research clinic. SUBJECTS: Twenty-eight patients with moderate to severe allergic rhinoconjunctivitis with asthma due to cat allergy. Subjects were stratified for cat sensitivity, cat ownership and asthma, and the groups were well matched for all relevant parameters. MAIN OUTCOME MEASURES: Symptom scores and peak flow rate during and after exposure to cats in a cat-room. Skin tests and conjunctival provocation thresholds. RESULTS: The actively treated group showed a marked reduction in symptoms during the cat exposure (mean score 61.6-17.1; P < 0.001) with no change in the placebo group (64.7 vs 62.1). The active group also showed a reduced peak flow response to cat exposure (mean fall of 85 L/min pretreatment, 29 L/min after treatment, P < 0.005) as well as reductions in conjunctival provocation sensitivity, skin sensitivity to cat extract and skin sensitivity to house dust mite (D.pteronyssinus). Skin reactivity to histamine and codeine were unaltered. No significant adverse reactions were encountered. CONCLUSIONS: Specific immunotherapy seems to be an effective treatment for cat allergy. Allergy to cats is common and often poorly controlled on conventional pharmacotherapy. Although cat allergy has not traditionally been considered as a valid indication for immunotherapy in the UK, it should now be considered as a legitimate treatment, especially for those who are unable to avoid exposure.

Adult

The immunology of respiratory allergies.

The main function of the respiratory tract is to provide a large surface area of thin epithelium for gas exchange. At the same time, this exposed surface and the conducting airways have to be defended against airborne irritants and infectious agents. The principal defence is the barrier formed by airway mucus and the mucociliary escalator. Agents which penetrate the initial defences may be destroyed by phagocytic cells, and may initiate an immune response. Respiratory allergy results when airborne allergens penetrate these defences and elicit and unhelpful immunological response. The nature of the airway immune response depends on the nature of the allergen, the antigen-processing pathway, and the microenvironment which dictates the phenotype of available T lymphocytes. Most allergens elicit IgE antibodies which then bind to mast cells and, when cross-linked, the mast cell releases inflammatory mediators which cause bronchospasm and mucus formation. Some chemical allergens appear able to trigger this pathway without involving IgE. In both cases, other inflammatory cells, especially eosinophils, are then recruited. These cells appear to be responsible for the epithelial damage and increased airways reactivity that characterise asthma. Similar histological patterns are found in atopic asthma, non-atopic asthma, occupational asthma due to low molecular weight chemicals and even in the reactive airways dysfunction syndrome (RADS)/irritant-induced asthma syndrome. Allergic airway inflammation and clinical asthma appear to be common histological and clinical consequences of a variety of specific and non-specific insults to the airways epithelium, airways mast cells and airways T lymphocytes.

Allergens

Cellular and mediator responses twenty-four hours after local endobronchial allergen challenge of asthmatic airways.

The effects of acute allergen exposure on bronchoalveolar lavage cells and mediators and mucosal inflammatory cells were evaluated in 10 subjects with atopic asthma who underwent lavage and biopsy 24 hours after segmental endobronchial allergen challenge. Increased numbers of bronchoalveolar lavage eosinophils were retrieved from the allergen-challenged sites compared with the saline-challenged sites (mean 21.4 vs 1.5 x 10(3) cells/ml; p < 0.02). Numbers of neutrophils and proportions of CD4+, CD8+, CD25+, and HLA-DR+ T cells were similar at the saline- and allergen-challenged sites. In contrast to the bronchoalveolar lavage findings, eosinophil numbers were not increased in the bronchial submucosa or epithelium. There was also no significant difference in neutrophils, mast cells, CD3+, CD4+, or CD8+ T cells in the submucosa after allergen challenge, but the number of activated (CD25+) T lymphocytes in the mucosa did increase after allergen challenge. Allergen challenge did not induce any significant change in endothelial expression of P-selectin, E-selectin, intercellular adhesion molecule-1, or vascular cell adhesion molecule-1. CD11a+ and very late antigen-4+ cell numbers were similar in the saline- and allergen-challenged sites. This study suggests that in patients with very mild asthma, local allergen challenge induces persistent bronchoalveolar lavage eosinophilia, but the recruitment process seems to have diminished or ceased by 24 hours.

Adult