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Biomedical subjects

A Wanner

Publications and source records attributed to A Wanner.

At least 73 records · Page 4Linked to original sources

Effect of histamine on tracheal mucosal perfusion, water content and airway smooth muscle in sheep.

We examined the response of tracheal mucosal blood flow normalized for systemic arterial pressure (Qtrn), water content (VH20) and luminal dead space (Vtr) to nebulized histamine in intact, lightly anesthetized sheep. Nebulized histamine produced rapid increases in mean Qtrn (+84%) and VH2O (+85%), and a decrease in mean Vtr (-17%) (P less than 0.05) within 5 min post completion of challenge. Mean Vtr rapidly returned to baseline, while mean Qtrn and VH2O remained elevated for 60 and 90 min after challenge, respectively. Pretreatment with chlorpheniramine (H1-antagonist) blocked the changes in Vtr and VH2O, and attenuated the increase in Qtrn. Metiamide (H2-antagonist) pretreatment abolished the increase in Qtrn and blunted the increase in VH2O, but had no effect on the decrease in VTR. 2-methylhistamine (H1-agonist) decreased mean Qtrn and Vtr (P less than 0.05) and dimaprit (H2-agonist) increased mean Qtrn (P less than 0.05) without changing Vtr. Neither 2-methylhistamine nor dimaprit significantly altered VH2O. Atropine blocked histamine induced decreases in Vtr and slightly attenuated the increases in Qtrn and VH2O. Thus, histamine increased airway smooth muscle tone and mucosal water content principally via H1 receptors, and mucosal perfusion via H2 receptors. The airway smooth muscle contraction involved muscarinic pathways.

Animals↗

Effects of P. aeruginosa-derived bacterial products on tracheal ciliary function: role of O2 radicals.

The purpose of this investigation was to evaluate the effects of bacterial products derived from Pseudomonas aeruginosa on the function of airway cilia and to assess the role of phagocytes and oxygen radicals in the observed responses. Ciliary beat frequency (CBF) was measured in a perfusion chamber with a microscopic technique using tracheal epithelial cells obtained from normal sheep by brush biopsy (70% epithelial cells, 18% macrophages, 11% neutrophils). Baseline CBF ranged between 678 and 1,126 min-1. After 20 min of perfusion with the cell free supernatant of P. aeruginosa culture (mucoid strain), a concentration-dependent depression of CBF was observed with a 58% inhibition at a 1:1 dilution (P less than 0.05). The P. aeruginosa-derived products pyocyanin and 1-hydroxyphenazine also decreased CBF in a dose-related fashion. The cilion-inhibitory effects of the supernatant and bacterial products were markedly attenuated after centrifugation of the brush preparation (80% epithelial cells, 16.5% macrophages, 3.5% neutrophils). Glucose/glucose oxidase also caused a rapid, concentration-dependent cilioinhibition or ciliostasis. Catalase blocked or attenuated the ciliary effects of the supernatant, bacterial products and glucose/glucose oxidase. Thus bacterial products released from P. aeruginosa impaired ciliary activity by a pathway which involved neutrophils and was mediated by toxic oxygen radicals.

Animals↗

Independent control of mucosal and total airway blood flow during hypoxemia.

In the larger airways, the blood circulation forms a subepithelial (mucosal) and outer (peribronchial) microvascular network. This raises the possibility that blood flow in these two networks is regulated independently. We used hypoxemia as a stimulus to induce changes in tracheal mucosal blood flow normalized for systemic arterial pressure (Qtr n) measured with an inert soluble gas technique and total bronchial blood flow (Qbr) and normalized Qbr (Qbrn) measured with an electromagnetic flow probe in anesthetized sheep. Fifteen minutes of hypoxemia [PO2 40 +/- 7 (SD) Torr] decreased mean Qtr n from 1.1 +/- 0.4 to 0.8 +/- 0.4 ml.min-1.mmHg-1.10(2) (-27%; P less than 0.05; n = 7) and increased mean Qbr n from 12.1 +/- 3.2 to 17.1 +/- 5.4 ml.min-1.mmHg-1.10(2) (+41%; P less than 0.05; n = 6). The rise in Qbr correlated with cardiac output (r = 0.68; P less than 0.05). Phentolamine pretreatment (0.1 mg/kg iv) blunted the hypoxemia-related decrease of mean Qtr n (-8%; P = NS). Tyramine (2.5 mg) applied locally to the trachea decreased mean Qtr n significantly after 30 and 45 min by 31 and 19%, respectively (P less than 0.05). 6-Hydroxydopamine (0.2 mg 4 times for 1 h locally applied) prevented the hypoxemia-induced as well as local tyramine-induced decrease in mean Qtr n (0 and 0%).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Morphometry of the subepithelial circulation in sheep airways. Effect of vascular congestion.

In order to quantitate the subepithelial microvascular volume and its relation to the airway lumen, we conducted a morphometric analysis of the vascular compartment in the wall of the trachea (within a 55-microns depth from the epithelial basement membrane) and of 1.0 and 0.5-mm bronchioles of sheep. The lungs were fixed by bronchial and pulmonary artery perfusion with glutaraldehyde under three experimental conditions: (1) bronchial artery pressure, 100 mm Hg pulmonary artery pressure, 20 mm Hg (control); (2) bronchial artery pressure, 100 mm Hg, pulmonary artery pressure, 40 mm Hg (pulmonary hypertension, PH); (3) bronchial artery pressure, 100 mm Hg, pulmonary artery pressure, 40 mm Hg (pharmacologic vasodilation with sodium nitroprusside, PH + V). Venous pressures were atmospheric. Under control conditions, the microvascular volume fraction comprised 12, 16, and 15% of the subepithelial tissue in the trachea and 1-mm and 0.5-mm bronchioles, respectively. PH increased the microvascular volume fraction in the bronchioles (p less than 0.05), but it had no effect on the microvasculature in the trachea. PH + V approximately doubled the microvascular volume fraction in the trachea and the bronchioles. PH increased the mean wall thickness, and PH and PH + V decreased the airway cross-sectional area in the 1-mm bronchioles. These observations demonstrate that the microvasculature constitutes a considerable volume fraction of the subepithelial airway tissue and that vascular congestion can narrow the bronchiolar lumen.

Animals↗

Airway blood flow modifies allergic airway smooth muscle contraction.

We tested the hypothesis that airway perfusion modifies the contractile response of airway smooth muscle to allergen challenge by influencing the clearance of locally released spasmogens. In six intact, lightly sedated, sheep allergic to Ascaris suum, we measured tracheal mucosal blood flow (Qtr) with a soluble gas uptake method and tracheal dead space (Vtr), an index of airway smooth muscle tone, by helium dilution before and serially after local aerosol challenge with A. suum extract or ragweed extract (control). The former challenge was repeated during continuous intravenous infusion of either vasopressin or nitroglycerin, which by themselves had no effect on Vtr and decreased and increased Qtr, respectively. Ragweed had no effect on Qtr and Vtr, whereas A. suum increased mean (+/- SE) Qtr by 111 +/- 31% (p less than 0.05) and decreased mean Vtr by 15 +/- 2% (p less than 0.05) immediately after challenge, with Qtr returning to baseline by 40 min and Vtr by 80 min. Vasopressin infusion prevented the A. suum-induced increase in Qtr and prolonged the decrease in mean Vtr (p less than 0.05). During nitroglycerin infusion, A. suum failed to alter Qtr or Vtr. Vasopressin and nitroglycerin had no effect on the contractile responses of tracheal smooth muscle to A. suum in vitro. These results indicate that the effects of vasopressin and nitroglycerin on antigen-induced airway smooth muscle contraction in vivo were due to alterations in airway blood flow rather than to alterations in the release of or airway smooth muscle responsiveness to chemical mediators.

Acetylcholine↗

Lipid mediators contribute to oxygen-radical-induced airway responses in sheep.

The purpose of this study was to determine if the bronchoconstriction and airway hyperresponsiveness (AHR) resulting from aerosolized xanthine (x; 0.1%)-xanthine oxidase (xo; 4.1 U) and the subsequent production of oxygen radicals is mediated by the secondary generation of lipid mediators. In seven conscious sheep, specific lung resistance (SRL) was measured before and after x-xo challenge; approximately 30 min later when SRL had returned to baseline, airway responsiveness to carbachol was determined from dose-response curves by calculating the cumulative provocating dose of carbachol in breath units (BU, defined as one breath of a 1% wt/vol carbachol solution) that increased SRL 400% over baseline (PD400). Inhaled x-xo caused in immediate increase in SRL of 162 +/- 36% (mean +/- SE; p less than 0.05) over baseline and decreased PD400 from a baseline value of 32.5 +/- 5.0 to 16.6 +/- 1.7 BU (p less than 0.05). Pretreatment with the H2O2 scavenger, catalase (CAT,; 38 mg aerosol), methylprednisolone succinate (MS; 1 mg/kg given intravenously), the cyclooxygenase inhibitor, indomethacin (IND; 2 mg/kg given intravenously), and the PAF antagonist, WEB-2086 (3 mg/kg given intravenously) all attenuated the x-xo-induced increase in SRL (p less than 0.05); the leukotriene D4 antagonist, MK-571 (5 mg by aerosol) had no effect. All agents inhibited the x-xo-induced decrease in PD400: mean BUs were 27 after CAT, 32 after WEB-2086, 34 after IND, 31 after MS, and 25 after MK-571 (all p less than 0.05 versus x-xo alone).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Mucociliary interaction in vitro: effects of physiological and inflammatory stimuli.

Mucociliary transport in the airways is governed by the interaction between ciliary activity and the depth and rheological properties of the liquids (mucus) covering the epithelial surface. A change in one of these parameters may not predict the direction and magnitude of a concomitant change in mucociliary transport. We therefore determined the effects of physiological (neurotransmitters) and pathological (inflammatory mediators) stimuli on ciliary beat frequency (CBF), surface liquid velocity (SLV), surface liquid depth (SLD), and viscoelasticity of mucus in pieces of sheep trachea (n = 5 for each treatment) mounted in a chamber such that the submucosal side was bathed with Krebs-Henseleit perfusate (KH) and the luminal side was exposed to conditioned air. SLV, SLD, and CBF were measured with a microscope provided with an electronic micrometer and strobe light. Apparent viscosity and shear elastic modulus were measured with a microcapillary method using mucus collected at the downstream end of the preparation. Control CBF, SLV, and SLD were 11.6 +/- 0.4 (SE) Hz, 91 +/- 8 micron/s, and 33 +/- 5 microns, respectively, at base line and did not change during KH perfusion for 100 min. Perfusion with both acetylcholine and epinephrine (10(-5) to 10(-3) M) produced concentration-dependent increases in mean CBF (maximum increases at 10(-3) M of 16 and 9%, P less than 0.05), whereas only acetylcholine increased mean SLV (+56% at 10(-3) M, P less than 0.05). Perfusion with platelet-activating factor (10(-7) to 10(-5) M) decreased both mean CBF and SLV in a dose-dependent fashion (-6 and -63% at 10(-5) M, P less than 0.05), whereas antigen perfusion (1:60 dilution) increased mean CBF (+10%, P less than 0.05) but decreased SLV (-47%, P less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

Effect of ozone on the postnatal development of lamb mucociliary apparatus.

We determined whether exposure to O3 early in the postnatal period impairs the normal development of the mucociliary apparatus in lambs and whether such changes lead to prolonged abnormalities in mucociliary function. Lambs were exposed to air (controls) or to 1 ppm O3 for 4 h/day for 5 days during the 1st wk of life. Tracheal mucus velocity (TMV), a marker of lung mucociliary clearance, was measured in vivo at birth (0 wk) and up to 24 wk later, and tracheal secretory function was measured (in vitro) and the morphology of the tracheal mucosa was determined at 0 and 2 wk in both groups. In the control group, TMV increased 94% from 0 to 2 wk (P less than 0.05), continued to increase until reaching a plateau at 8 wk, and then remained constant from 8 to 24 wk. In contrast, O3-exposed lambs showed a 24% decrease in TMV from 0 to 2 wk (P less than 0.05 vs. control), and throughout the remaining time TMV remained below (P less than 0.05) that observed in control lambs. O3 exposure partially prevented the age-dependent decrease in basal secretion of tracheal macromolecules normally observed between 0 and 2 wk. These changes in secretory function were associated with a significant increase in tissue conductance (37%, P less than 0.05 vs. 0 wk), predominantly the result of active chloride secretion. The functional changes induced by O3 were associated with a retardation of the normal morphological development of the tracheal epithelium.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Persistence of enhanced aerosol deposition in the lung after recovery from carbachol-induced airway obstruction.

Time course recovery from induced airway obstruction by carbachol infusion (CI; 0.2 microgram.kg-1.min-1 for 40 min), carbachol aerosol (CA; 10 breaths of 2% solution), and histamine aerosol (HA; 25-50 breaths of 5% solution) challenge was investigated in conscious sheep (n = 6 each). Total lung aerosol deposition and airway caliber as assessed by pulmonary airflow resistance (RL) were measured every 20-30 min up to 4 h after the challenges. Aerosol deposition was measured by monitoring aerosol concentration continuously with a laser aerosol photometer while the sheep rebreathed 1.0-micron-diam inert oil droplets delivered by a 0.25-liter bag-in-box system driven by a respiratory pump at a breathing frequency of 30 breaths/min. Total accumulated deposition at the fifth breath (AD5) as percentage of the initial aerosol concentration was determined and used as an aerosol deposition index. Percent changes in AD5 from baseline were compared with corresponding changes in RL. Both RL and AD5 increased after Cl, CA, and HA: 192-477% for RL and 23-44% for AD5 (P less than 0.05). Mean RL return to baseline values 1 h after CI and HA and 2 h after CA. Mean AD5 returned to baseline at 1 h post-HA. In contrast, mean AD5 remained elevated for 2-4 h after CI and CA (P less than 0.05), and the increased AD5 could not be reversed by a bronchodilator aerosol. The persistence of enhanced aerosol deposition long after the return of RL to baseline suggests that complete recovery of airway conditions after CI and CA takes much longer than predicted by RL.(ABSTRACT TRUNCATED AT 250 WORDS)

Aerosols↗

Vasomotion influences airflow in peripheral airways.

The purpose of this study was to test the hypothesis that blood flow, by its effect on blood volume, influences airflow resistance in peripheral airways. In conscious ewes, forced sinusoidal flow oscillations (5 Hz) were applied through a balloon-tipped, dual-channel fiberoptic bronchoscope placed in a segmental bronchus, and peripheral airflow resistance (Rp) was determined from flow and bronchial pressure. Drugs with predominant vascular or airway smooth muscle effects were administered locally through the bronchoscope. Nitroglycerin (NTG) produced a dose-dependent increase in mean Rp (+288% at 1,000 micrograms), which was blocked by methylene blue (p less than 0.05) and not reversed by atropine. Carbachol (CARB) also increased mean Rp in a dose-dependent manner (+605% at 400 micrograms); this effect was not blocked by methylene blue, but it was reversed by atropine (p less than 0.05). The increase in mean Rp after a single dose of NTG (250 micrograms) was sustained for at least 20 min and transiently reversed by vasopressin (0.2 units, p less than 0.05) but not by isoproterenol (100 micrograms). Conversely, the sustained increase in Rp after a single dose of CARB (50 micrograms) was transiently reversed by isoproterenol (p less than 0.05) but not by vasopressin. We conclude that NTG increased Rp by vasodilation and CARB by bronchoconstriction. This supports the hypothesis that vasodilation limits airflow in the lung periphery, presumably because of vascular congestion.

Airway Resistance↗

The role of mucus in chronic obstructive pulmonary disease.

Chronic bronchitis is characterized by mucociliary dysfunction resulting from structural and functional defects of cilia and the secretory apparatus. The combination of hypersecretion and ciliary impairment leads to disruption of mucociliary interaction and hence the accumulation of secretions in the lower airways. Cigarette smoke appears to play a critical role in the pathogenesis of chronic bronchitis-associated mucociliary dysfunction. While the excessive lower airway secretions may have only minor effects on the natural course of airflow obstruction, they could transiently compromise airway function during acute exacerbations. In addition, altered aerosol deposition in the airways resulting from excessive airway secretions could influence the airway responses to inhaled irritants and pharmacologic agents. There are currently no direct, non-invasive methods available to assess the quantity and distribution of airway secretions in vivo. Indirect indices such as cough frequency, sputum volume, respiratory function, and mucociliary clearance are nonspecific and subject to misinterpretation. The clinical utility of mucotropic pharmacologic agents and of physical maneuvers directed at removing excessive lower airway secretions is therefore difficult to evaluate objectively.

Bronchitis↗

Airway mucosal blood flow: response to autonomic and inflammatory stimuli.

A major portion of airway blood flow is distributed to the subepithelial tissue space and is strategically located to influence both epithelial and airway smooth muscle functions. To assess the magnitude and responsiveness of blood flow through the subepithelial microvasculature, we measured tracheal mucosal blood flow with a soluble gas method in intact sheep. We found responses of tracheal mucosal blood flow to pharmacological stimuli alpha- and beta- (adrenoceptor agonists) and inflammatory stimuli (antigen and histamine), and demonstrated that alterations in mucosal blood flow influence the magnitude and duration of allergic airway smooth muscle contraction in the trachea. Mucosal blood flow, which under certain circumstances is regulated independently of total airway blood flow, could play a critical role in the manifestations of and recovery from airway disease.

Adrenergic alpha-Agonists↗

Effect of chest wall oscillation on mucus clearance: comparison of two vibrators.

This study was designed to investigate the effect of an experimental low-energy chest wall oscillator and of a commercial chest percussor on central airway mucociliary clearance. Five normal dogs were anesthetized, intubated, and placed supine in a trough to which the oscillator or percussor was mounted. Tracheal mucus velocity (TMV) was measured by radiopaque particle or charcoal spot movement. The commercial percussor (a fixed sinusoidal device) used at its minimum frequency of 40 Hz, produced a mean (+/- SE) maximum expiratory flow rate of 0.25 +/- 0.04 L/sec at the airway opening, and had no measurable effect on TMV. The experimental oscillator, when operated at a level sufficient to generate flows of 2-3 L/sec, and with an unbiased 13-Hz sine wave (estimated energy, 150 W), increased mean TMV to 204 +/- 13% of control (P less than 0.003); the percent increase was independent of baseline TMV. We conclude that moderate oscillatory power applied to the chest wall can enhance mucus clearance in central airways, but that currently available commercial percussors may not meet the mechanical requirements for this effect.

Animals↗

Relationship between deposition of and responsiveness to inhaled methacholine in normal and asymptomatic subjects.

The purpose of this study was to determine if the intersubject variability in airway responsiveness to methacholine is a function of the methacholine mass deposited in the airways and if methacholine hyperresponsiveness in asymptomatic subjects with asthma is related to increased methacholine deposition. Ten normal and 10 age-matched asymptomatic subjects with asthma inhaled, with a standardized single breath maneuver, a dry aerosol (mass median aerodynamic diameter, 1.5 micron; geometric SD, 2.1) generated from solutions of methacholine at concentrations ranging from 0.078 mg/ml to 80 mg/ml in buffered saline, mixed with a fixed concentration of the fluorescent tracer quinine. The mass of methacholine deposited was calculated from the fluorescence of the inspired and expired aerosol trapped on an absolute filter before inspiration and during expiration. Specific airway conductance (SGaw) was measured before and after the inhalation of increasing concentration of methacholine, and the provocative deposited mass corresponding to a 35% decrease in SGaw was calculated. Baseline aerosol deposition (quinine-labeled buffered saline) ranged from 63% to 94% and was similar in normal subjects (mean 85%) and asymptomatic subjects with asthma (mean 84%). There was a correlation between the decrease in SGaw and methacholine mass deposited at first dose in the normal subjects (p less than 0.001) but not in asymptomatic subjects with asthma. Mean provocative methacholine mass corresponding to a 35% decrease in SGaw was 86 micrograms (range 2 to 157 micrograms) in asymptomatic subjects with asthma and 1361 micrograms (range 157 to 3434 micrograms) in normal subjects (p less than 0.01).(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Inhalation↗

Mobilization of mucus by airway oscillations.

The effects of high frequency asymmetric airway oscillations on mucus clearance were evaluated in excised tracheas of sheep, in an animal model of excessive mucus production, and in patients with bronchiectasis. Asymmetric high frequency ventilation (15 Hz) with expiratory biased flow profiles (expiratory peak-flow greater than inspiratory peak-flow) could move mucus droplets towards the pharynx in rigid and flexible tracheas by gas-liquid interaction. In rigid tracheas the mucus was transported towards the periphery of the model lung if the oscillations were inspiratory biased. In very collapsible tracheas, however, even inspiratory biased oscillations moved the mucus cephalad. Parameters influencing direction and speed of mucus are airflow profile, peak-flow, airway compliance and lung resistance. Gamma-camera studies showed that in anesthetized dogs radiolabeled artificial mucus followed the direction of the bias during high frequency ventilation. In five human volunteers with bronchiectasis and excessive secretions the asymmetric airway oscillations were superimposed during spontaneous breathing using a mouthpiece. Airway wall vibrations following the pressure swings of the oscillator could be observed. During forced expiration inward bulging of the posterior membranes of trachea and bronchi occurred at the negative pressure phase of the oscillations. This event was associated with increased appearance of sputum in the central airways. We conclude that high frequency ventilation with asymmetric flow profiles applied via tube or mouthpiece might be an effective future treatment of mucostasis.

Airway Resistance↗