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Biomedical subjects

R H Ingram

Publications and source records attributed to R H Ingram.

At least 37 records · Page 2Linked to original sources

Localization of the site of the bronchoconstrictor effects of leukotriene C4 compared with that of histamine in asthmatic subjects.

Although the sulfidopeptide leukotrienes are known to be potent bronchoconstrictors, the relative aerodynamic site of response to these compounds is controversial. We determined the decrease in maximal expiratory flow rates (Vmax) from partial and maximal flow-volume curves in seven asthmatic subjects after inhalation of aerosols of histamine or leukotriene C4 (LTC4) while breathing air or a mixture of 80% helium and 20% oxygen (He/O2). Density dependence (DD) of maximal expiratory flow was determined from partial expiratory flow volume curves by an isovolumic comparison of maximal expiratory flows with subjects breathing He/O2 with those obtained while breathing air. Measurements were made before and after inhalation of aerosols generated from graded concentrations of each constrictor agent. An aerodynamic site of response to LTC4 more central than for histamine was indicated by a significant (p less than 0.02) increase in DD with the former but not with the latter agonist. The ratio of Vmax at 30% vital capacity determined from maximal and partial maneuvers (M/P) was routinely higher at baseline while breathing He/O2 compared to the corresponding values with air, suggesting a degree of peripheral obstruction that was reversed by a deep inhalation. Obstruction induced by LTC4 inhalation resulted in a greater increase in M/P compared with baseline when air was the test gas (p less than 0.02). This was not observed when He/O2 was the test gas. Similar effects on M/P were not induced by histamine aerosol inhalation, consistent with a central airway response to LTC4 that was not affected by volume history.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Inhalation↗

The effects of deep inhalation on maximal expiratory flow during intensive treatment of spontaneous asthmatic episodes.

Asthmatic patients who came to hospital for treatment of severe attacks were assessed for level of obstruction and the effects of a deep inhalation (DI) on degree of obstruction at various stages of their treatment and after recovery over several days. The more severe the obstruction, the greater was the constrictor effect of a DI; as lung function improved with intensive treatment, including corticosteroids, the constrictor effect diminished. Thus, we believe the constrictor effects of a DI relate to the degree of inflammation in the obstructive process. These longitudinal data relating severity to the effects of a DI were nearly identical to previously published cross-sectional data in a group of patients with spontaneous asthma with widely different levels of lung function. It is possible that the response to a DI in a given asthmatic subject serves as a functional marker for the predominant mechanism for obstruction.

Adult↗

Lung inflation does not increase maximal expiratory flow during induced obstruction in the dog.

A deep inflation (DI) reverses induced bronchoconstriction in normal human subjects whether assessed by airway resistance before and after a DI or by isovolumic maximal expiratory flows (Vmax) from partial expiratory flow-volume (PEFV) vs. maximum expiratory flow-volume (MEFV) maneuvers. These observations suggest that with induced constriction the hysteresis of airways exceeds that of the parenchyma. In contrast with humans, a previous study of ours on dogs indicated that induced increases in airway resistance were unaffected by DI, suggesting that hysteresis of airways and parenchyma were equal. We hypothesized therefore that in constricted dog lungs, any differences that might arise in isovolumic Vmax between PEFV and MEFV maneuvers would not be due to changes in airway caliber but rather would be wholly determined by isovolumic differences in deflational recoil pressures. Recoil pressures were dynamically measured using six separate alveolar capsules in each of six dogs. At base line there were no significant differences between isovolumic recoil pressures or maximal flows with volume history, suggesting equal degrees of airway and parenchymal hysteresis. After histamine-induced constriction there were also no isovolumic differences in flows, but due to striking nonhomogeneities in dynamic recoil pressure among alveolar capsules, it was not possible to express a single meaningful recoil pressure pertinent to the lungs as a whole. These findings are consistent with the idea that isovolumic comparisons of Vmax serve as a reasonable indicator of changes in the relative degree of airway and parenchymal hysteresis.

Airway Obstruction↗

Methacholine-induced bronchoconstriction in dogs: effects of lung volume and O3 exposure.

The maximal effect induced by methacholine (MCh) aerosols on pulmonary resistance (RL), and the effects of altering lung volume and O3 exposure on these induced changes in RL, was studied in five anesthetized and paralyzed dogs. RL was measured at functional residual capacity (FRC), and lung volumes above and below FRC, after exposure to MCh aerosols generated from solutions of 0.1-300 mg MCh/ml. The relative site of response was examined by magnifying parenchymal [RL with large tidal volume (VT) at fast frequency (RLLS)] or airway effects [RL with small VT at fast frequency (RLSF)]. Measurements were performed on dogs before and after 2 h of exposure to 3 ppm O3. MCh concentration-response curves for both RLLS and RLSF were sigmoid shaped. Alterations in mean lung volume did not alter RLLS; however, RLSF was larger below FRC than at higher lung volumes. Although O3 exposure resulted in small leftward shifts of the concentration-response curve for RLLS, the airway dominated index of RL (RLSF) was not altered by O3 exposure, nor was the maximal response using either index of RL. These data suggest O3 exposure does not affect MCh responses in conducting airways; rather, it affects responses of peripheral contractile elements to MCh, without changing their maximal response.

Airway Resistance↗

Impact of cuts in acute beds on services for patients.

The current redistribution of resources in the National Health Service will require a reduction in the number of acute beds in many district health authorities. The effect of such a reduction on services for patients was examined. Two hundred and two general medical admissions and 201 general surgical admissions to hospitals in West Lambeth District Health Authority were reviewed retrospectively. The elements considered were the severity of the patient's illness at admission, the scope for reducing the length of stay, the potential for other forms of care, and what types of patients would be denied access at different levels of reductions in the number of beds. Given the assumptions a considerable potential for maintaining levels of service with fewer beds was identified. The finding was, however, that even if all of this potential was realised the cuts in the number of beds that are planned by districts that are losing resources would force real reductions in patient services. This suggests a "trade off." To increase services in districts that are gaining resources, real unmet need may have to be created in districts that are losing resources.

Beds↗

Partitioning of pulmonary resistance during constriction in the dog: effects of volume history.

We assessed the relative changes in airways and lung tissue with bronchoconstriction, and the changes in each during and following a deep inhalation (DI). We partitioned pulmonary resistance (RL) into airway (Raw) and tissue (Vtis) components using alveolar capsules in 10 anesthetized, paralyzed, and open-chested dogs ventilated sinusoidally with 350-ml breaths at 1 Hz. We made measurements before and during bronchoconstriction induced by vagal stimulation or inhalation of histamine or prostaglandin F2 alpha (PGF2 alpha), each of which decreased dynamic compliance by approximately 40%. With histamine and PGF2 alpha the rise in RL was predominantly due to Vtis. With vagal stimulation there was a relatively greater increase in Raw than Vtis. At higher lung volumes, Vtis increases offset falls in Raw, producing higher RL at these volumes before and during constriction with PGF2 alpha and histamine. During constriction with vagal stimulation, the fall in Raw with inflation overrode the rise in Vtis, resulting in a lower RL at the higher compared with the lower lung volume. The changes seen after a DI in the control and constricted states were due to alterations in tissue properties, both viscous and elastic. However, the relative hysteresis of the airways and parenchyma were equal, since Raw, our index of airway size, was unchanged after a DI.

Airway Resistance↗

Effects of airway tone and volume history on maximal expiratory flow in asthma.

We assessed the difference between isovolumic maximal expiratory flows (Vmax) using maneuvers begun at mid-lung volumes, so-called partial expiratory flow-volume curves (P), vs. those begun at full inflation, so-called maximal expiratory flow-volume curves (M), in 10 asthmatic subjects before and following obstruction induced by isocapnic hyperpnea with cold air and before and after bronchodilation with a beta-agonist or antimuscarinic agent. Volume history effects were quantitated as an M-to-P ratio of Vmax at 30% vital capacity (M/P V30). Although M/P V30 was variable among patients at base line, there was a uniform increase in M/P V30 during constriction and a consistent decrease below base line after dilation. Blunting of induced obstruction with beta-agonists also diminished the increase in M/P V30. Antimuscarinics, despite equivalent bronchodilation, failed to alter the degree of obstruction induced by cold air or the increase in M/P V30 seen during obstruction. The level of airway tone, as indicated by specific resistance, related directly to the M/P V30. We conclude that the response of the asthmatic lung to a deep inhalation is relatively predictable when acute changes in airway tone are produced.

Adult↗

Interdependent regional lung emptying during forced expiration: a transistor model.

We recognized similarities between isovolume pressure-flow curves of the lung and emitter-collector voltage-current characteristics of bipolar transistors, and used this analogy to model expiratory flow limitation in a two-generation branching network with parallel nonhomogeneity. In this model, each of two bronchi empty parenchymal compliances through a common trachea, and each branch includes resistances upstream and downstream of a flow-limiting site. Properties of each airway are specified independently, allowing simulation of differences between the tracheal and bronchial generations and between the parallel bronchial paths. Simulations of four types of parallel asymmetry were performed: unilateral peripheral bronchoconstriction; unilateral central bronchoconstriction; asymmetric redistribution of parenchymal compliance; and unilateral alteration of the bronchial area-transmural pressure characteristic. Our results indicate that multiple axial choke points can exist simultaneously in a symmetric lung when large airway opening-pleural pressure gradients exist; despite severe nonhomogeneity of regional lung emptying, flow interdependence among parallel branches tends to maintain a near normal configuration of the overall maximal expiratory flow-volume (MEFV) curve throughout a large fraction of the vital capacity; and sudden changes of slope of the MEFV curve ("knees" or "bumps") may reflect choking in one branch in a nonuniform lung, but need not be obvious even when severe heterogeneity of lung emptying exists.

Airway Resistance↗

Cardiovascular performance during bronchospasm in dogs.

In 8 anesthetized mongrel dogs, we studied the effects of carbachol-induced bronchoconstriction (BC) on the cardiovascular system. Inhalation of carbachol in an amount sufficient to produce at least a 50% decrease in lung conductance (GL) did not lead to significant changes in cardiac output, mean transmural left atrial (Pla) or right atrial pressure, end-diastolic left ventricular septal-lateral dimension, left ventricular apex to base dimension, or in end-diastolic right ventricular septal to lateral dimension during expiration. Mean transmural pulmonary arterial pressure rose and mean transmural aortic pressure (Pao) fell during BC. During inspiration, there were significant increases in transmural left atrial pressure, Pla, associated with decreases in end-diastolic left ventricular septal-lateral and apex-base dimensions. End-diastolic right ventricular septal-lateral dimension increased during inspiration. Beat-to-beat aortic flow (Qao) decreased during inspiration, while pulmonary arterial flow increased. There were no changes in transmural Pao during inspiration measured at the nadir of aortic flow. During BC, these changes were exaggerated, but remained qualitatively the same. The magnitude of the inspiratory decrease in pleural pressure (Ppl) was shown to be linearly related to the magnitude of the change in GL, and the magnitude of the inspiratory decrease in Pao and Qao (pulsus paradoxus) was shown to be linearly related to the magnitude of the inspiratory swing in Ppl. Although vagotomy significantly altered the pattern of respiration such that tidal volume increased and respiratory rate decreased, it did not substantially alter the responses of the cardiovascular system to breathing during BC. We conclude: the inspiratory decrease in Pao and Qao (pulsus paradoxus) is associated with a decrease in left ventricular end-diastolic filling, and a stiffening of the left ventricle; these changes are exaggerated during BC as a result of the exaggerated inspiratory swings in Ppl; the effects on left ventricular dynamics are mediated only in part through increases in right ventricular end-diastolic filling operating through the mechanism of ventricular interdependence; changes in left ventricular afterload appear to play little role in determining the responses seen.

Airway Resistance↗

Bronchoconstrictor effects of leukotriene E4 in normal and asthmatic subjects.

The bronchoconstrictor activity of an aerosol of leukotriene E4(LTE4) was compared with that of histamine in 5 normal and in 6 asthmatic subjects to define the relative potency of LTE4 between the groups using 3 indices of airway response. The FEV1 and the flow rate measured at 30% of vital capacity from partial and maximal expiratory maneuvers (V30-P and V30-M) were measured. The geometric mean (GSEM) concentration of LTE4 required to reduce the V30-P by 30% was 0.30 (1.46) mM in the normal subjects, and 0.058 (1.63) in the asthmatic subjects; LTE4 was 39-fold more potent than histamine in the former and 14-fold in the latter group. Further, we observed that when normal and asthmatic subjects were compared at a degree of bronchoconstriction resulting in a 30% decrement in the V30-P after inhaling LTE4, there was a greater response in the asthmatic group than in the normal group of the accompanying change in the FEV1. The decrements in the FEV1 were not significantly different between the 2 groups after inhaling histamine. This study demonstrates that LTE4 is a potent bronchoconstrictor agonist in humans and suggests that airway responsiveness to this agonist differs substantially with the index of bronchoconstriction used for assessment of airway response.

Aerosols↗

Effects of volume history during spontaneous and acutely induced air-flow obstruction in asthma.

We examined the volume history effect on maximal expiratory flow (Vmax) in patients with asthma by comparing Vmax at 60% of VC from forced exhalation maneuvers begun just above FRC (partial, P) with those begun from TLC (maximal, M) and expressed the results as M-P ratios. In a clinic population with varying degrees of obstruction, we found that M-P ratios varied inversely with the severity of the obstructive process, i.e., the more severely obstructed patients had a fall in Vmax after a deep inhalation (DI). By contrast, equally severe obstruction acutely induced in subjects with mild asthma was associated with an increase in Vmax after a DI. There was no difference between the spontaneous versus the induced groups in degree of nonhomogeneity as assessed by single-breath nitrogen tests. Changes in specific airway conductance after a DI during spontaneous obstruction were in the same direction as the changes in Vmax, and the time course for restitution of airway caliber in subjects who showed bronchoconstriction after a DI was significantly longer than for those subjects who showed bronchodilatation. We conclude that in severe bronchial asthma with spontaneous obstruction, a DI produces an increase in severity that is opposite to the results found in acutely induced obstruction, and the time course for reestablishing baseline airway caliber is more prolonged. We suggest that mechanisms for and sites of obstruction vary between the 2 groups.

Acute Disease↗

Chronic exposure to sulfur dioxide. Physiologic and histologic evaluation of dogs exposed to 50 or 15 ppm.

Seven adult mongrel dogs were exposed to SO2 gas at 2 different concentrations (15 and 50 ppm) on a daily basis for 5 to 11 months. Mucous hypersecretion and airway obstruction (a sustained increase in pulmonary resistance) developed in 4 dogs exposed to 50 ppm SO2. Histologic examination of the dogs' airways demonstrated epithelial thickening and an increase in size of the mucous glands. No inflammatory cell infiltration of the airways was noted and, in addition, responsiveness to inhaled histamine and methacholine did not change. The increase in lung resistance correlated with increase in mucous gland volume and airway wall thickening, but not with any change in airway responsiveness. Dogs exposed to 15 ppm SO2 showed minimal histologic and physiologic changes compared with control dogs. Previous work with a similar model of chronic bronchitis, using higher level SO2 exposure, has demonstrated an association of airway inflammation with decreased responsiveness to inhaled bronchoconstrictors. In the present study, with a lower exposure level to SO2 (50 versus 200 ppm), we found similar histologic findings associated with airway obstruction, but in the absence of airway inflammation, responsiveness to inhaled bronchoconstrictors was unchanged. This supports the theory that chronic airway inflammation may be associated with decreased responsiveness to inhaled bronchoconstrictors. This contrasts with the hyperresponsiveness induced by acute exposure to irritant gases noted by others.

Airway Resistance↗

Deep breaths and airway obstruction in asthma.

Spontaneously obstructed asthmatics constrict their airways after a DI. Such behavior is also seen in chronic bronchitis in which there is a prominent inflammatory component. Induced obstruction is reversed by a deep breath in asthmatic and chronic bronchitic patients and probably represents constriction of smooth muscle in conducting airways to give a predominance of airway hysteresis. Bronchodilation results in a constrictor effect of a DI which probably represents relaxation of smooth muscle in conducting airways, thereby decreasing airway hysteresis and allowing parenchymal hysteresis to dominate. As can be appreciated in Figure 3, all possible responses to a DI are seen and become coherent within the framework of the relative hysteresis analysis. The response of airways to a deep breath may relate to both site and mechanism of obstruction. It is suggested that defining the airway response to a deep breath in an asthmatic may relate not only to site and mechanism but may dictate what therapeutic agents should be given at that time.

Asthma↗

Density dependence of maximal expiratory flow before and during tracheal constriction in dogs.

The effect of carbachol-induced central bronchoconstriction on density dependence of maximal expiratory flow (MEF) was assessed in five dogs. MEFs were measured on air and an 80% He-20% O2 mixture before and after local application of carbachol to the trachea. Airway pressures were measured using a pitot-static probe, from which central airway areas were estimated. At lower concentrations of carbachol the flow-limiting site remained in the trachea over most of the vital capacity (VC), and tracheal area and compliance decreased in all five dogs. In four dogs, decreases in choke point area predominated and produced decreases in flows. In one dog the increase in airway "stiffness" apparently offset the fall in area to account for an increase in MEF. Density dependence measured as the ratio of MEF on HeO2 to MEF on air at 50% of VC increased in all five dogs. Increases in density dependence appeared to be related to increases in airway stiffness at the choke point rather than decreases in gas-related airway pressure differences. Lower concentrations produced a localized decrease in tracheal area and extended the plateau of the flow-volume curve to lower lung volumes. Higher concentrations caused further reductions in tracheal area and greater longitudinal extension of bronchoconstriction, resulting in upstream movement of the site of flow limitation at higher lung volumes. Density dependence increased if the flow-limiting sites remained in the trachea at mid-VC but fell if the flow-limiting site had moved upstream by that volume.

Air↗