In Vitro Evaluation of Aerosols Delivered via the Nasal Route.

BACKGROUND: Infants and young children are obligate nose breathers; therefore, a transnasal route seems the logical delivery method of inhaled aerosols. The efficiency of aerosol delivery depends on several factors, such as interface, type of nebulizer, and patient age and breathing pattern. We hypo...

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Publicado en:Respiratory Care Vol. 60; no. 7; pp. 1015 - 1026
Autores principales: El Taoum, Katia K., Jinxiang Xi, JongWong Kim, Berlinski, Ariel
Formato: pictorial research tables/charts Journal Article
Publicado: Mary Ann Liebert, Inc. Jul2015
Acceso en línea:Ver este registro en EBSCOhost
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        atl: In Vitro Evaluation of Aerosols Delivered via the Nasal Route.
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          El Taoum, Katia K.
          Jinxiang Xi
          JongWong Kim
          Berlinski, Ariel
        affil: Department of Pediatrics, Pulmonology Section, University of Arkansas for Medical Sciences, Little Rock, Arkansas
      sug:
        subj:
          In Vitro Studies
          Aerosols Administration and Dosage
          Drug Administration Routes
          Nose
          Pediatric Care
          Models, Anatomic
          Albuterol Administration and Dosage
          Nebulizers and Vaporizers
          Descriptive Statistics
          Masks
          Tidal Volume
          Respiration
          Equipment and Supplies
          Data Analysis Software
          Post Hoc Analysis
          Analysis of Variance
          T-Tests
          Funding Source
          Spectrophotometry
      ab: BACKGROUND: Infants and young children are obligate nose breathers; therefore, a transnasal route seems the logical delivery method of inhaled aerosols. The efficiency of aerosol delivery depends on several factors, such as interface, type of nebulizer, and patient age and breathing pattern. We hypothesized that the use of a vibrating mesh nebulizer, a tight-fitting face mask, and a head model and breathing pattern of an older child would result in a higher lung dose. We also hypothesized that the use of an anatomically correct model would more accurately reflect lung dose than models that do not include airways. METHODS: A model comprising a breathing simulator and an anatomically correct model of a 7-month-old infant and a 5-y-old child with an interposed collection filter (lung dose) were used. Breathing patterns of a newborn, infant, and child were used with 7 interfaces. A continuous output and a vibrating mesh nebulizer were loaded with albuterol sulfate solution (5 mg/3.5 mL) and operated for 5 min. Albuterol mass was determined via spectrophotometer (276 nm). RESULTS: Lung dose varied between 0 and 3%. The jet nebulizer was more efficient than the vibrating mesh nebulizer. The front-loaded mask was the most efficient interface. We also found that higher tidal volumes were associated with higher lung doses and that the use of a larger airway model resulted in a lower lung dose. Finally, the model showed a good correlation with in vivo data and rendered lung doses severalfold lower than previous data obtained with oral models. CONCLUSIONS: Careful pairing of the aerosol generator and interface is very important during transnasal aerosol delivery.
      pubtype: Academic Journal
      doctype:
        pictorial
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
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