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Protocol and Guidelines for Point-of-Care Lung Ultrasound in Diagnosing Neonatal Pulmonary Diseases Based on International Expert Consensus
Published on: March 6, 2019
Lung function tests in neonates and infants with chronic lung disease: lung and chest-wall mechanics
Monika Gappa1, J Jane Pillow, Julian Allen
1Department of Pediatric Pulmonology and Neonatology, Medizinische Hochschule Hannover, Hannover, Germany. gappa.monika@mh-hannover.de
Insights
Lung function testing in infants with respiratory disorders is crucial. Comprehensive assessment, including lung volume and airway function, is needed to understand lung development and improve treatment effectiveness.
Area of Science:
- Neonatal Medicine
- Pediatric Pulmonology
- Respiratory Physiology
Background:
- Infants with acute neonatal respiratory disorders and chronic lung disease of infancy (CLDI) require accurate lung function assessment.
- Existing literature on respiratory mechanics in this population has limitations in methodology and data interpretation.
Purpose of the Study:
- To critically review and summarize data on lung function testing in infants and young children.
- To discuss the role of respiratory mechanics in understanding pulmonary status and therapeutic interventions.
Main Methods:
- Review of published literature on respiratory mechanics in infants.
- Critical evaluation of methods, equipment, study design, and reference data.
- Focus on chest-wall and tissue mechanics during intensive care and unassisted breathing.
Main Results:
- Numerous methods exist to assess respiratory mechanics, but many studies lack simultaneous lung volume measurement, hindering interpretation.
- Results suggest lung immaturity impairs function, which may improve with development, regardless of CLDI diagnosis.
- Single parameters like compliance or resistance are insufficient; combined assessment of lung volume and airway function is necessary.
Conclusions:
- Lung function testing in infants requires standardized methods and simultaneous lung volume measurement.
- Understanding the impact of immaturity on lung development necessitates a multi-faceted approach.
- Emerging techniques like low-frequency forced oscillation need further development for clinical application.
Abstract:
This is the fifth paper in a review series that summarizes available data and critically discusses the potential role of lung function testing in infants and young children with acute neonatal respiratory disorders and chronic lung disease of infancy (CLDI). This review focuses on respiratory mechanics, including chest-wall and tissue mechanics, obtained in the intensive care setting and in infants during unassisted breathing. Following orientation of the reader to the subject area, we focused comments on areas of enquiry proposed in the introductory paper to this series. The quality of the published literature is reviewed critically with respect to relevant methods, equipment and study design, limitations and strengths of different techniques, and availability and appropriateness of reference data. Recommendations to guide future investigations in this field are provided. Numerous different methods have been used to assess respiratory mechanics with the aims of describing pulmonary status in preterm infants and assessing the effect of therapeutic interventions such as surfactant treatment, antenatal or postnatal steroids, or bronchodilator treatment. Interpretation of many of these studies is limited because lung volume was not measured simultaneously. In addition, populations are not comparable, and the number of infants studied has generally been small. Nevertheless, results appear to support the pathophysiological concept that immaturity of the lung leads to impaired lung function, which may improve with growth and development, irrespective of the diagnosis of chronic lung disease. To fully understand the impact of immaturity on the developing lung, it is unlikely that a single parameter such as respiratory compliance or resistance will accurately describe underlying changes. Assessment of respiratory mechanics will have to be supplemented by assessment of lung volume and airway function. New methods such as the low-frequency forced oscillation technique, which differentiate the tissue and airway components of respiratory mechanics, are likely to require further development before they can be of clinical significance.
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