Literature DB >> 8762101

Characterization of the anatomical structures involved in the contractile response of the rat lung periphery.

F G Salerno1, H Kurosawa, D H Eidelman, M S Ludwig.   

Abstract

1. When lung parenchymal strips are challenged with different smooth muscle agonists, the tensile and viscoelastic properties change. It is not clear, however, which of the different anatomical elements present in the parenchymal strip, i.e., small vessel, small airway or alveolar wall, contribute to the response. 2. Parenchymal lung strips from Sprague Dawley rats were suspended in an organ bath filled with Krebs solution (37 degrees C, pH = 7.4) bubbled with 95%O2/5%CO2. Resting tension (T) was set at 1.1 g and sinusoidal oscillations of 2.5% resting length (L0) at a frequency of 1 Hz were applied. Following 1 h of stress adaptation, measurements of length (L) and T were recorded under baseline conditions and after challenge with a variety of pharmacological agents, i.e., acetylcholine (ACh), noradrenaline (NA) and angiotensin II (AII). Elastance (E) and resistance (R) were calculated by fitting changes in T, L and delta L/ delta t to the equation of motion. Hysteresivity (eta, the ratio of the energy dissipated to that conserved) was obtained from the equation eta = (R/E)2 pi f. 3. In order to determine whether small airways or small vessels accounted for the responses to the different pharmacologic agents, further studies were carried out in lung explants. Excised lungs from Sprague Dawley rats were inflated with agarose. Transverse slices of lung (0.5-1.0 mm thick) were cultured overnight. By use of an inverted microscope and video camera, airway and vascular lumen area were measured with an image analysis system. 4. NA, ACh and AII constricted the parenchymal strips. Airways constricted after all agonists, vessels constricted only after All. Atropine (Atr) pre-incubation decreased the explanted airway and vessel response to AII, but no difference was found in the parenchymal strip response. 5. Preincubation with the arginine analogue N omega-nitro-L-arginine (L-NOARG) did not modify the response to ACh but mildly increased the oscillatory response to NA after co-preincubation with propranolol (Prop). 6. These results suggest that during ACh and NA challenge, small vessels do not contribute substantially to the parenchymal strip response. The discrepancy between results in airways, vessels and strips when Atr was administered prior to AII implicates a direct contractile response in the parenchymal strip.

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Year:  1996        PMID: 8762101      PMCID: PMC1909738          DOI: 10.1111/j.1476-5381.1996.tb15461.x

Source DB:  PubMed          Journal:  Br J Pharmacol        ISSN: 0007-1188            Impact factor:   8.739


  29 in total

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3.  Airway and tissue responses to antigen challenge in sensitized brown Norway rats.

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5.  Tissue-specific expression of type 1 angiotensin II receptor subtypes. An in situ hybridization study.

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6.  Vasoconstrictor effects of angiotensin II on the pulmonary vascular bed.

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7.  Airway and tissue responses during hyperpnea-induced constriction in guinea pigs.

Authors:  T Nagase; M J Dallaire; M S Ludwig
Journal:  Am J Respir Crit Care Med       Date:  1994-05       Impact factor: 21.405

8.  Tissue resistance in the guinea pig at baseline and during methacholine constriction.

Authors:  E P Ingenito; B Davison; J J Fredberg
Journal:  J Appl Physiol (1985)       Date:  1993-12

9.  Structural composition of lung parenchymal strip and mechanical behavior during sinusoidal oscillation.

Authors:  M S Ludwig; M J Dallaire
Journal:  J Appl Physiol (1985)       Date:  1994-10

10.  "Contractile interstitial cells" in pulmonary alveolar septa: a possible regulator of ventilation-perfusion ratio? Ultrastructural, immunofluorescence, and in vitro studies.

Authors:  Y Kapanci; A Assimacopoulos; C Irle; A Zwahlen; G Gabbiani
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  2 in total

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Review 2.  Lung parenchymal mechanics in health and disease.

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