Related Experiment Video
Updated: Oct 1, 2026

Evaluating Regional Pulmonary Deposition using Patient-Specific 3D Printed Lung Models
Published on: November 11, 2020
Effect of Nebulizer Breath-Guiding on Breathing Patterns and Lung Deposition
Benjamin Heine1, Uwe Schuschnig1, Jakob Richter2
1PARI Pharma GmbH, Starnberg, Germany.
Background:
Efficient aerosol therapy depends on both device performance and inhalation technique. Breath-triggered vibrating mesh nebulizers reduce drug loss by generating aerosol only during inspiration but may prolong treatment. Guiding patients toward slow, deep breathing could improve lung deposition and shorten nebulization time, yet quantitative evidence, particularly across disease groups, remains limited.
Objective:
To assess how integrated breath-guiding features influence breathing behavior, lung deposition, and user perception in healthy adults and in patients with obstructive or restrictive lung disease.
Methods:
Sixty-four participants inhaled through three nebulizer configurations: a low-resistance reference (eFlow OS) and two versions of the eFlow Integrated featuring direction-dependent resistance and multimodal feedback, tested with or without a breath-guiding app. Flow signals from multiple breaths were analyzed to determine phase-averaged breathing parameters. Device effects were evaluated by ANOVA. Representative breathing patterns and unsteady aerosol characteristics were input to a validated whole-lung in silico model to estimate deposition. User experience was assessed by questionnaire.
Results:
Breath-guiding consistently altered inhalation behavior. Peak inspiratory flow decreased by ∼20%, the I/E ratio increased by >15%, and with the breath guide app, tidal volume (+40%) and breath duration (+47%) increased. These effects were similar across disease groups. In silico simulations showed improved delivery with guided inhalation: lung drug deposition rate increased by 3.7% and 15.5%, and alveolar deposited mass fraction rose by 66% and 76% versus the reference. The breath guide app further shifted deposition from extrathoracic to thoracic and alveolar regions and reduced exhalation losses (-14%). Most participants (88%) were satisfied or very satisfied, citing pleasant resistance and helpful app guidance.
Conclusion:
Breath-guiding features and digital coaching reliably promote slower, deeper breathing, leading to greater lung and alveolar deposition and shorter expected nebulization times. High user acceptance underscores the clinical potential of patient-centric, guided inhalation in optimizing aerosol therapy.
More Related Videos
15:04Modeling and Simulations of Olfactory Drug Delivery with Passive and Active Controls of Nasally Inhaled Pharmaceutical Aerosols
Published on: May 20, 2016
07:28Dry Powder and Nebulized Aerosol Inhalation of Pharmaceuticals Delivered to Mice Using a Nose-only Exposure System
Published on: April 6, 2017
Related Concept Videos
Inhaled Medications
Factors Affecting Pulmonary Ventilation
Alveolar Surface Tension
The alveolar fluid lines the luminal surface of the alveoli and exerts a force called surface tension. This force is caused by the polar water molecules in the liquid being more strongly attracted to each...
Administering Oxygen by Nasal Cannula
Nasal Cannulas
A nasal cannula is a lightweight tube split into two prongs placed in the nostrils, connected...
Mechanical Ventilation III: Noninvasive Ventilation
Noninvasive Positive-Pressure Ventilation (NIPPV)
Physiological Control of Respiration
Breathing, a seemingly passive process, is regulated by the respiratory center in the brainstem. This center coordinates the involuntary control of respirations, which means it occurs without conscious effort, ensuring a smooth and uninterrupted pattern.
Regulation of Ventilation
The body maintains ventilation by monitoring levels of carbon dioxide (CO2), oxygen (O2), and hydrogen ion concentration (pH) in the arterial blood. Among these factors, the level of CO2 plays a crucial...
Assessment of Ventilation II: Respiratory Depth and Rhythm
Respiratory depth measures the volume of air inhaled or exhaled during a breath. It can vary from shallow to deep and typically remains consistent when a person is at rest or asleep. Occasionally, individuals will automatically inhale deeply, known as sighing, which inflates the lungs with more air than normal breathing.
To assess respiratory depth, observe the degree of chest excursion or movement: