Literature DB >> 3624138

Low-frequency respiratory mechanical impedance in the rat.

Z Hantos, B Daróczy, B Suki, S Nagy.   

Abstract

A modified forced oscillatory technique was used to determine the respiratory mechanical impedances in anesthetized, paralyzed rats between 0.25 and 10 Hz. From the total respiratory (Zrs) and pulmonary impedance (ZL), measured with pseudorandom oscillations applied at the airway opening before and after thoracotomy, respectively, the chest wall impedance (ZW) was calculated as ZW = Zrs - ZL. The pulmonary (RL) and chest wall resistances were both markedly frequency dependent: between 0.25 and 2 Hz they contributed equally to the total resistance falling from 81.4 +/- 18.3 (SD) at 0.25 Hz to 27.1 +/- 1.7 kPa.l-1 X s at 2 Hz. The pulmonary compliance (CL) decreased mildly, from 2.78 +/- 0.44 at 0.25 Hz to 2.36 +/- 0.39 ml/kPa at 2 Hz, and then increased at higher frequencies, whereas the chest wall compliance declined monotonously from 4.19 +/- 0.88 at 0.25 Hz to 1.93 +/- 0.14 ml/kPa at 10 Hz. Although the frequency dependence of ZW can be interpreted on the basis of parallel inhomogeneities alone, the sharp fall in RL together with the relatively constant CL suggests that at low frequencies significant losses are imposed by the non-Newtonian resistive properties of the lung tissue.

Entities:  

Mesh:

Year:  1987        PMID: 3624138     DOI: 10.1152/jappl.1987.63.1.36

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  11 in total

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4.  A model of transient oscillatory pressure-flow relationships of canine airways.

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Review 7.  Oscillometry of the respiratory system: a translational opportunity not to be missed.

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8.  Static and dynamic mechanics of the murine lung after intratracheal bleomycin.

Authors:  Effrosyni D Manali; Charalampos Moschos; Christina Triantafillidou; Anastasia Kotanidou; Ioannis Psallidas; Sophia P Karabela; Charis Roussos; Spyridon Papiris; Apostolos Armaganidis; Georgios T Stathopoulos; Nikolaos A Maniatis
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9.  Comparison Study of Airway Reactivity Outcomes due to a Pharmacologic Challenge Test: Impulse Oscillometry versus Least Mean Squared Analysis Techniques.

Authors:  Elena Rodriguez; Charrell M Bullard; Milena H Armani; Thomas L Miller; Thomas H Shaffer
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10.  Changes in the mechanical properties of the respiratory system during the development of interstitial lung edema.

Authors:  Raffaele L Dellacà; Emanuela Zannin; Giulio Sancini; Ilaria Rivolta; Biagio E Leone; Antonio Pedotti; Giuseppe Miserocchi
Journal:  Respir Res       Date:  2008-06-12
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