In vitro comparison of performance including imposed work of breathing of CPAP systems used in low-resource settings.
Journal
PloS one
ISSN: 1932-6203
Titre abrégé: PLoS One
Pays: United States
ID NLM: 101285081
Informations de publication
Date de publication:
2020
2020
Historique:
received:
25
11
2019
accepted:
06
11
2020
entrez:
3
12
2020
pubmed:
4
12
2020
medline:
13
1
2021
Statut:
epublish
Résumé
Respiratory distress due to preterm birth is a significant cause of death in low-resource settings. The introduction of continuous positive airway pressure (CPAP) systems to treat respiratory distress significantly reduced mortality in high-resource settings, but CPAP was only recently introduced in low-resource settings due to cost and infrastructure limitations. We evaluated pressure stability and imposed work of breathing (iWOB) of five CPAP systems used in low resource settings: the Fisher and Paykel bubble CPAP, the Diamedica baby CPAP, the Medijet nCPAP generator, and the first (2015) and second (2017) generation commercially available Pumani CPAPs. Pressure changes due to fresh gas flow were evaluated for each system by examining the relationship between flow and pressure at the patient interface for four pressures generated at the bottle (0, 3, 5, and 7 cm H2O); for the Medijet nCPAP generator, no bottle was used. The slope of the resulting relationship was used to calculate system resistance. Poiseuille's law of resistance was used to investigate significant contributors to resistance. Resistance ranged from 0.05 to 1.40 [Formula: see text]; three CPAP devices had resistances < 0.4 [Formula: see text]: the Fisher and Paykel system, the Diamedica system, and the second generation Pumani bubble CPAP. The other two systems, the Medijet nCPAP generator and the first generation Pumani bCPAP, had resistances >1.0 [Formula: see text]. Imposed WOB was measured using an ASL5000 test lung to simulate the breath cycle for an infant (5.5 kg), a term neonate (4.0 kg), and a preterm neonate (2.5 kg). Imposed WOB ranged from 1.4 to 39.5 mJ/breath across all systems and simulated infant sizes. Changes in pressure generated by fresh gas flow, resistance, and iWOB differ between the five systems evaluated under ideal laboratory conditions. The available literature does not indicate that these differences affect clinical outcomes.
Identifiants
pubmed: 33270660
doi: 10.1371/journal.pone.0242590
pii: PONE-D-19-32707
pmc: PMC7714113
doi:
Substances chimiques
Gases
0
Types de publication
Comparative Study
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
e0242590Déclaration de conflit d'intérêts
I have read the Journal’s policy and two of the authors (MO, RRK) have the following competing interests: MO, RRK are inventors on a patent (Bubble Continuous Positive Airway Pressure; Patent No: US 2015/0258291 A1) for CPAP that has been licensed to 3SD; all royalties have been donated to Rice University. This does not alter our adherence to PLOS ONE policies on sharing data and materials.
Références
BMC Pediatr. 2015 Mar 25;15:26
pubmed: 25885437
Pediatrics. 2019 Sep;144(3):
pubmed: 31399490
PLoS One. 2014 Jan 29;9(1):e86327
pubmed: 24489715
J Perinatol. 2016 May;36 Suppl 1:S21-8
pubmed: 27109089
Lancet Glob Health. 2019 Aug;7(8):e1130-e1138
pubmed: 31303299
Pediatr Res. 2007 Sep;62(3):343-7
pubmed: 17622958
Pediatrics. 2011 Jun;127(6):1139-46
pubmed: 21536613
Resuscitation. 2005 Nov-Dec;67(2-3):293-303
pubmed: 16324993
PLoS One. 2013;8(1):e53622
pubmed: 23372661
Crit Care Med. 1975 Mar-Apr;3(2):76-8
pubmed: 1098852
PLoS One. 2018 May 16;13(5):e0196683
pubmed: 29768512
Acta Paediatr. 2017 Nov;106(11):1760-1766
pubmed: 28715132
Clin Perinatol. 2012 Sep;39(3):483-96
pubmed: 22954264
J Perinatol. 2011 Jan;31(1):44-50
pubmed: 20393478
Science. 2013 Nov 29;342(6162):1055-7
pubmed: 24288323
Trop Doct. 2017 Jan;47(1):19-22
pubmed: 26864235
Annu Rev Biomed Eng. 2007;9:567-87
pubmed: 17430083
Br J Anaesth. 1954 Sep;26(5):323-32
pubmed: 13199210
Arch Dis Child Fetal Neonatal Ed. 2015 Sep;100(5):F382-7
pubmed: 25854822
Bull World Health Organ. 2015 Jan 1;93(1):19-28
pubmed: 25558104
Pediatr Crit Care Med. 2012 Mar;13(2):e113-9
pubmed: 21946854
Neonatology. 2019;115(4):432-450
pubmed: 30974433
PLoS One. 2020 Jun 30;15(6):e0235031
pubmed: 32603380
Indian Pediatr. 2010 Feb;47(2):139-43
pubmed: 19578226
Resuscitation. 2015 Oct;95:1-80
pubmed: 26477410
Pediatrics. 2001 Feb;107(2):304-8
pubmed: 11158463
Pan Afr Med J. 2016 Jun 21;24:152
pubmed: 27642489
Pediatr Res. 1987 Apr;21(4):313-25
pubmed: 3574984
Pediatrics. 2019 Oct;144(4):
pubmed: 31540968
Turk J Pediatr. 2012 Nov-Dec;54(6):632-40
pubmed: 23692790