Search PubMedSearch

SEARCH · Search PubMed

Results for “Emphysema”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

The scanning electron microscopy of elastase-induced emphysema. A comparison with emphysema in man.

Emphysema was produced in hamsters by a single intratracheal injection of 25 units of porcine pancreatic elastase. The lungs were examined by scanning electron microscopy at intervals from 24 hours to 1 year after the injection, and the appearance was compared to examples of human emphysema. Within 24 hours of injection, the alveolar ducts were dilated and air spaces were of more variable size than normal. Fibrin strands, erythrocytes and phagocytic cells were present in air spaces. By a week the hemorrhage and exudate had resolved, but adnormal air spaces continued to enlarge over the period of study. The abnormal airspaces formed by progressive dilation of alveolar ducts with shortening and occasionally effacement of interalveolar septa. Interalveolar pores were occasionally enlarged but only focally increased in number. The appearance of single examples of human congenital lobar emphysema and panlobular emphysema resembled the animal model. Abnormal air spaces were formed by dilated alveolar ducts with retraction of interalveolar septa. In contrast, in some cases of centrolobular emphysema marked fenestration of alveolar septa occurred and large air spaces were often traversed by threadlike strands of tissue remnants of some preexisting alveolar walls. The results suggest that there are at least two morphogenetic processes leading to emphysema. One is the coalescence of fenestrations leading to destruction of alveolar walls, and the other is a gradual remodeling of lung structure by mechanisms still to be defined.

Adult

Pulmonary hemodynamics, gas exchange, and the severity of emphysema as assessed by quantitative CT scan in chronic bronchitis and emphysema.

We have used the CT transthoracic scan to measure regional lung density in vivo, as our previous studies have shown that this correlates with the increase in size of distal air spaces, which is a defining characteristic of emphysema. We have studied 32 patients with chronic airflow limitation (FEV1, 15 to 68% predicted) caused by chronic bronchitis and emphysema (synonym, COPD), with a wide range of arterial PO2 (38 to 90 mm Hg) and PCO2 (32 to 63 mm Hg) while breathing air at rest. We could find no significant relationships between the extent of emphysema (as assessed in vivo by the EMI number defining the lowest fifth percentile of the CT density histogram of the lung fields) and either arterial blood gas tensions, mean pulmonary arterial pressure, cardiac output, or calculated total pulmonary vascular resistance while at rest (n = 32) or during supine leg exercise (n = 29). We conclude that the extent of emphysema does not correlate with the clinical or pathologic features of the "pink and puffing" (i.e., mild hypoxemia, no CO2 retention, no pulmonary hypertension, etc.) or "blue and bloated" (i.e., hypoxemia, CO2 retention, pulmonary hypertension) pattern of patients with COPD nor to the spectrum of hemodynamic and gas exchange abnormalities that commonly occur in patients between these two extreme examples. Thus, "pink puffers" should not be equated with "the emphysematous" pattern of this disease. Although these clinicophysiologic patterns remain valid as descriptions, they do not relate to the extent of underlying emphysema in COPD.

Aged

[Pulmonary emphysema. Changes in the pulmonary function of experimentally induced emphysema].

By intratracheal injection of the protease papain to experimental animals parenchymal changes in the lung can be induced, that resemble human emphysema. Papain (dosage 26 to 112 mg, 1 to 4 injections) was given intratracheally to 8 bastard dogs (weighing from 12.5 to 20 kg) during light general anesthesia. Pulmonary function was assessed in weekly intervals and related to morphologic changes in the lung. Static compliance of the lung and FRC measured during respiratory arrest were increased after papain, bronchial resistance, measured while artifically ventilated at constant pressure was also increased. Changes of static lung compliance and FRC were seen after the first administration of papain, but further increased with time of observation and after multiple doses of papain. Increase of resistance was not found before 5 weeks. At quiet breathing resistance was not increased at all. No significant changes were found of arterial pO2 and pCO2, pH, standard and actual bicarbonate, diffusion capacity for O2, tidal volume, minute ventilation and ventilatory rate. Morphological findings confirmed the changes described by others. Pulmonary function appears to be pathological at a time when morphology still seems to be normal. The question is discussed to what extent the model of experimental emphysema induced by proteolytic enzymes can contribute to the understanding of human pulmonary emphysema. Lung function in the course of experimental emphysema is compared with function in different clinical types of emphysema.

Acid-Base Equilibrium

[Pneumothorax, subcutaneous emphysema and mediastinal emphysema in transnasally intubated patients].

A 41-year-old woman was admitted to our clinic because of an acute subdural hematoma. After an emergency operation her neurological status improved with an increase in the Glasgow Coma Scale score from 6 to 11. On the second postoperative day she developed frequent episodes of clonic convulsive seizures localized in the face and the left upper extremity, and her level of consciousness deteriorated. Next day she was transnasally intubated for respiratory management, but no mechanical ventilation was required. While she was undergoing the CT scanning 5 days after intubation, respiratory arrest and cyanosis developed all of a sudden, and her face and neck became swollen. The chest x-ray revealed a marked subcutaneous emphysema, mediastinal emphysema and bilateral pneumothorax. CT at that time showed a diffuse low density area in the right hemisphere, and a marked midline shift returned. She did not regain consciousness and died 12 days after the incident. At autopsy an ulcer was observed in the wall of the trachea, where the tip or the cuff of the transnasal tracheal tube was supposed to be present. No perforation, however, was there. Case 2: A 75-year-old woman was admitted to our hospital because of SAH. In hospital course she was also transnasally intubated and required no mechanical ventilation. When she was undergoing the CT scanning 3 days after intubation, she developed subcutaneous and mediastinal emphysema similarly to case 1. Although it is reported to be not a rare complication in patients on a mechanical ventilator, subcutaneous emphysema or pneumothorax is extremely rare in those intubated patients with spontaneous respiration. The mechanism of these complications in these cases is briefly discussed.

Adult

Protease-induced experimental emphysema: the relationship between elastolytic activity and emphysema induction.

Induction of experimental emphysema by protease was performed with several proteases both in vivo and in vitro to compare the ability of inducing emphysematous change and their elastolytic activity. The following results were obtained. 1) Only elastase and papain have emphysema inducing capacity. Emphysematous changes induced by elastase in vitro were dose dependent. But papain has no genuine elastolytic activity. Nature of the emphysema-inducing capacity of papain remains obscure. 2) Advantages of using the isolated lung for experiment were discussed, especially for the small dose required for enzyme-instillation. Moreover, there is no interferencey by endogeneous enzyme or protease-inhibitors. 3) Guinea pig is useful for the experiemnt of emphysema-induction both in vivo and in vitro. Minimal requirement of elastase is 50 microgram in vitro and 250 microgram for in vivo experiment.

Animals