Literature DB >> 21356587

Body plethysmography--its principles and clinical use.

C P Criée1, S Sorichter, H J Smith, P Kardos, R Merget, D Heise, D Berdel, D Köhler, H Magnussen, W Marek, H Mitfessel, K Rasche, M Rolke, H Worth, R A Jörres.   

Abstract

Body plethysmography allows to assess functional residual capacity (FRC(pleth)) and specific airway resistance (sRaw) as primary measures. In combination with deep expirations and inspirations, total lung capacity (TLC) and residual volume (RV) can be determined. Airway resistance (Raw) is calculated as the ratio of sRaw to FRC(pleth). Raw is a measure of airway obstruction and indicates the alveolar pressure needed to establish a flow rate of 1 L s(-1). In contrast, sRaw can be interpreted as the work to be performed by volume displacement to establish this flow rate. These measures represent different functional aspects and should both be considered. The measurement relies on the fact that generation of airflow needs generation of pressure. Pressure generation means that a mass of air is compressed or decompressed relative to its equilibrium volume. This difference is called "shift volume". As the body box is sealed and has rigid walls, its free volume experiences the same, mirror image-like shift volume as the lung. This shift volume can be measured via the variation of box pressure. The relationship between shift volume and alveolar pressure is assessed in a shutter maneuver, by identifying mouth and alveolar pressure under zero-flow conditions. These variables are combined to obtain FRC(pleth), sRaw and Raw. This presentation aims at providing the reader with a thorough and precise but non-technical understanding of the working principle of body plethysmography. It also aims at showing that this method yields significant additional information compared to spirometry and even bears a potential for further development.
Copyright © 2011 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21356587     DOI: 10.1016/j.rmed.2011.02.006

Source DB:  PubMed          Journal:  Respir Med        ISSN: 0954-6111            Impact factor:   3.415


  68 in total

1.  Whole-Body Plethysmography in Suspected Asthma: A Prospective Study of Its Added Diagnostic Value in 302 Patients.

Authors:  Antonius Schneider; Johannes Schwarzbach; Bernhard Faderl; Hubert Hautmann; Rudolf A Jörres
Journal:  Dtsch Arztebl Int       Date:  2015-06-12       Impact factor: 5.594

2.  A MULTIDISCIPLINARY APPROACH TO THE REHABILITATION OF A COLLEGIATE FOOTBALL PLAYER FOLLOWING ANKLE FRACTURE: A CASE REPORT.

Authors:  Luis A Feigenbaum; Lee D Kaplan; Tony Musto; Ignacio A Gaunaurd; Robert S Gailey; William P Kelley; Timothy J Alemi; Braulio Espinosa; Eli Mandler; Vincent A Scavo; Dustin C West
Journal:  Int J Sports Phys Ther       Date:  2016-06

3.  Assessment of routine procedure effect on breathing parameters in mice by using whole-body plethysmography.

Authors:  Orhan Raşid; Daniel Chirita; Adina D Iancu; Crina Stavaru; Dorel L Radu
Journal:  J Am Assoc Lab Anim Sci       Date:  2012-07       Impact factor: 1.232

4.  Assessment of gas compression and lung volume during air stacking maneuver.

Authors:  A Sarmento; V R Resqueti; G A F Fregonezi; A Aliverti
Journal:  Eur J Appl Physiol       Date:  2016-12-09       Impact factor: 3.078

Review 5.  Advancements in Methods and Camera-Based Sensors for the Quantification of Respiration.

Authors:  Haythem Rehouma; Rita Noumeir; Sandrine Essouri; Philippe Jouvet
Journal:  Sensors (Basel)       Date:  2020-12-17       Impact factor: 3.576

6.  Impact of airborne particle size, acoustic airflow and breathing pattern on delivery of nebulized antibiotic into the maxillary sinuses using a realistic human nasal replica.

Authors:  Lara Leclerc; Jérémie Pourchez; Gérald Aubert; Sandrine Leguellec; Laurent Vecellio; Michèle Cottier; Marc Durand
Journal:  Pharm Res       Date:  2014-03-04       Impact factor: 4.200

7.  Neonatal nonviral gene editing with the CRISPR/Cas9 system improves some cardiovascular, respiratory, and bone disease features of the mucopolysaccharidosis I phenotype in mice.

Authors:  Roselena Silvestri Schuh; Esteban Alberto Gonzalez; Angela Maria Vicente Tavares; Bruna Gazzi Seolin; Lais de Souza Elias; Luisa Natalia Pimentel Vera; Francyne Kubaski; Edina Poletto; Roberto Giugliani; Helder Ferreira Teixeira; Ursula Matte; Guilherme Baldo
Journal:  Gene Ther       Date:  2019-12-11       Impact factor: 5.250

8.  Measuring Breathing Patterns in Mice Using Whole-body Plethysmography.

Authors:  Patricia Prada-Dacasa; Andrea Urpi; Laura Sánchez-Benito; Patrizia Bianchi; Albert Quintana
Journal:  Bio Protoc       Date:  2020-09-05

Review 9.  Pulmonary function testing in COPD: looking beyond the curtain of FEV1.

Authors:  Sotirios Kakavas; Ourania S Kotsiou; Fotis Perlikos; Maria Mermiri; Georgios Mavrovounis; Konstantinos Gourgoulianis; Ioannis Pantazopoulos
Journal:  NPJ Prim Care Respir Med       Date:  2021-05-07       Impact factor: 2.871

10.  Requirements for Supporting Diagnostic Equipment of Respiration Process in Humans.

Authors:  Szymon Nitkiewicz; Robert Barański; Marek Galewski; Hanna Zajączkiewicz; Andrzej Kukwa; Andrzej Zając; Stanisław Ejdys; Piotr Artiemjew
Journal:  Sensors (Basel)       Date:  2021-05-17       Impact factor: 3.576

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