Literature DB >> 12503716

Components of respiratory resistance monitored in mechanically ventilated patients.

B Babik1, F Peták, T Asztalos, Z I Deák, G Bogáts, Z Hantos.   

Abstract

The interrupter technique is commonly adopted to monitor respiratory resistance (Rrs,int) during mechanical ventilation; however, Rrs,int is often interpreted as an index of airway resistance (Raw). This study compared the values of Rrs,int provided by a Siemens 940 Lung Mechanics Monitor with total respiratory impedance (Zrs) parameters in 39 patients with normal spirometric parameters, who were undergoing elective coronary bypass surgery. Zrs was determined at the airway opening with pseudorandom oscillations of 0.2-6 Hz at end inspiration. Raw and tissue resistance (Rti) were derived from the Zrs data by model fitting; Rti and total resistance (Rrs,osc=Raw+Rti) were calculated at the actual respirator frequencies. Lower airway resistance (Rawl) was estimated by measuring tracheal pressure. Although good agreement was obtained between Rrs,osc and Rrs,int, with a ratio of 1.07+/-0.19 (mean+/-SD), they correlated poorly (r2=0.36). Rti and the equipment component of Raw accounted for most of Rrs,osc (39.8+/-11.9 and 43.0+/-6.9%, respectively), whereas only a small portion belonged to Rawl (17.2+/-6.3%). It is concluded that respiratory resistance may become very insensitive to changes in lower airway resistance and therefore, inappropriate for following alterations in airway tone during mechanical ventilation, especially in patients with relatively normal respiratory mechanics, where the tissue and equipment resistances represent the vast majority of the total resistance.

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Year:  2002        PMID: 12503716     DOI: 10.1183/09031936.02.00000802

Source DB:  PubMed          Journal:  Eur Respir J        ISSN: 0903-1936            Impact factor:   16.671


  4 in total

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Authors:  Stacey Peterson-Carmichael; Paul C Seddon; Ira M Cheifetz; Inéz Frerichs; Graham L Hall; Jürg Hammer; Zoltán Hantos; Anton H van Kaam; Cindy T McEvoy; Christopher J L Newth; J Jane Pillow; Gerrard F Rafferty; Margaret Rosenfeld; Janet Stocks; Sarath C Ranganathan
Journal:  Ann Am Thorac Soc       Date:  2016-02

Review 2.  Oscillometry of the respiratory system: a translational opportunity not to be missed.

Authors:  Lennart K A Lundblad; Annette Robichaud
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2021-04-06       Impact factor: 5.464

3.  Testing limits to airflow perturbation device (APD) measurements.

Authors:  Erika R Lopresti; Arthur T Johnson; Frank C Koh; William H Scott; Shaya Jamshidi; Nischom K Silverman
Journal:  Biomed Eng Online       Date:  2008-10-31       Impact factor: 2.819

4.  Effects of respiratory mechanics on the capnogram phases: importance of dynamic compliance of the respiratory system.

Authors:  Barna Babik; Zsófia Csorba; Dorottya Czövek; Patrick N Mayr; Gábor Bogáts; Ferenc Peták
Journal:  Crit Care       Date:  2012-10-02       Impact factor: 9.097

  4 in total

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