» Articles » PMID: 33659401

Measuring Breathing Patterns in Mice Using Whole-body Plethysmography

Overview
Journal Bio Protoc
Specialty Biology
Date 2021 Mar 4
PMID 33659401
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

Respiratory dysfunction is among the main cause of severe and fatal pathologies worldwide. The use of effective experimental models and methodologies for the study of the pulmonary pathophysiology is necessary to prevent, control and cure these diseases. Plethysmography, a technique for the assessment of lung function, has been widely applied in mice for the characterization of respiratory physiology. However, classical plethysmography methods present technical limitations such as the use of anesthesia and animal immobilization. Whole-body plethysmography (WBP) avoids these issues providing a non-invasive approach for the assessment of the respiratory function in conscious animals. WBP relies on the recording of pressure changes that are produced by the spontaneous breathing activity of an animal placed inside an airtight chamber. During normal respiration, pressure variation is directly proportional to the respiratory pattern of the animal allowing the measurement of the respiratory rate and tidal volume. These parameters are commonly used to evaluate pulmonary function in different physiological and disease models. In contrast to classical plethysmography methods, WBP technique allows reproducible serial measurements as it avoids animal restraint or the use of anesthesia. These key features rend WBP a suitable approach for longitudinal studies allowing the assessment of progressive respiratory alterations in physiological and pathological conditions. This protocol describes the procedures for the measurement of the breathing patterns in mice using the WBP method, the data analysis and results interpretation.

Citing Articles

Functional and Structural Changes in Diaphragm Neuromuscular Junctions in Early Aging.

Tsentsevitsky A, Sibgatullina G, Odoshivkina Y, Khuzakhmetova V, Tokmakova A, Ponomareva A Int J Mol Sci. 2024; 25(16).

PMID: 39201644 PMC: 11354816. DOI: 10.3390/ijms25168959.


Effects of Naphtho[2,1-]pyrene Exposure on CYP1A1 Expression: An and Mechanistic Study Exploring the Role of Posttranscriptional Modification.

Shen J, Wang L, Zhang W, Gong X, Li S, Zou X Environ Health Perspect. 2024; 132(8):87003.

PMID: 39133094 PMC: 11318572. DOI: 10.1289/EHP14055.


Wireless monitoring of respiration with EEG reveals relationships between respiration, behavior, and brain activity in freely moving mice.

Dasgupta D, Schneider-Luftman D, Schaefer A, Harris J J Neurophysiol. 2024; 132(1):290-307.

PMID: 38810259 PMC: 11383384. DOI: 10.1152/jn.00330.2023.


Interleukin-6-elicited chronic neuroinflammation may decrease survival but is not sufficient to drive disease progression in a mouse model of Leigh syndrome.

Aguilar K, Canal C, Comes G, Diaz-Clavero S, Llanos M, Quintana A J Inflamm (Lond). 2024; 21(1):1.

PMID: 38212783 PMC: 10782699. DOI: 10.1186/s12950-023-00369-4.


Parabrachial tachykinin1-expressing neurons involved in state-dependent breathing control.

Arthurs J, Bowen A, Palmiter R, Baertsch N Nat Commun. 2023; 14(1):963.

PMID: 36810601 PMC: 9944916. DOI: 10.1038/s41467-023-36603-z.


References
1.
Quindry J, Ballmann C, Epstein E, Selsby J . Plethysmography measurements of respiratory function in conscious unrestrained mice. J Physiol Sci. 2015; 66(2):157-64. PMC: 10717823. DOI: 10.1007/s12576-015-0408-1. View

2.
Quintana A, Zanella S, Koch H, Kruse S, Lee D, Ramirez J . Fatal breathing dysfunction in a mouse model of Leigh syndrome. J Clin Invest. 2012; 122(7):2359-68. PMC: 3387817. DOI: 10.1172/JCI62923. View

3.
Bates J . CORP: Measurement of lung function in small animals. J Appl Physiol (1985). 2017; 123(5):1039-1046. DOI: 10.1152/japplphysiol.00243.2017. View

4.
Hill R, Disney A, Conibear A, Sutcliffe K, Dewey W, Husbands S . The novel μ-opioid receptor agonist PZM21 depresses respiration and induces tolerance to antinociception. Br J Pharmacol. 2018; 175(13):2653-2661. PMC: 6003631. DOI: 10.1111/bph.14224. View

5.
Cramer N, Xu X, Christensen C, Bierman A, Tankersley C, Galdzicki Z . Strain variation in the adaptation of C57Bl6 and BALBc mice to chronic hypobaric hypoxia. Physiol Behav. 2015; 143:158-65. DOI: 10.1016/j.physbeh.2015.01.036. View