Related Experiment Video
Updated: Jan 29, 2026

A Structured Approach to Extubation in Mechanically Ventilated Rats
Published on: July 18, 2025
In Vitro and In Silico Evaluation of Polymyxin B Aerosol Delivery in Adult Mechanical Ventilation
Shengnan Zhang1, Guanlin Wang2, Jingjing Liu3
1Department of Pharmacy, The Third Xiangya Hospital of Central South University, Changsha 410013, China.
Abstract:
Background: Nebulized polymyxin B (PMB) therapy is widely used in intensive care units for treating hospital-acquired and ventilator-associated pneumonia caused by multidrug-resistant Gram-negative bacteria, yet its pulmonary delivery performance during invasive mechanical ventilation remains poorly characterized. Methods: An in vitro adult mechanical ventilation model was used. We evaluated two nebulizers (vibrating mesh nebulizer [VMN] and jet nebulizer [JN]) at three positions (standalone nebulizer, 15 cm from the Y-piece, and the humidifier's dry end) with two artificial airway types (endotracheal and tracheostomy tubes). Lung deposition was predicted using the multiple-path particle dosimetry model, incorporating the Yeh/Schum five-lobe adult lung model. Results: In the standalone setup, the percentage of delivered dose of VMN and JN was approximately 40% and 34%, respectively. Mechanical ventilation significantly reduced the delivered dose (all p ≤ 0.0085), with VMN at the humidifier's dry end delivering only 2.14-2.99% of the nominal dose. In all the tested ventilation scenarios, both the use of the JN and positioning the nebulizer 15 cm from the Y-piece significantly increased aerosol delivery (all p ≤ 0.021). While the ventilator circuit reduced the total drug amount, it filtered larger aerosols. This resulted in a smaller mass median aerodynamic diameter and a higher fine particle fraction (all p < 0.0001), which doubled the predicted alveolar deposition fraction (from 13-14% in standalone to 23-28% in ventilation scenarios) and eliminated extrathoracic deposition. Conclusions: This study provides the first in vitro and in silico assessment of PMB aerosol delivery during invasive mechanical ventilation. Nebulizer type, its placement within the circuit, and the artificial airway are critical factors that significantly alter the pulmonary delivery of PMB aerosol and subsequently impact its lung deposition.
Insights
Nebulized polymyxin B delivery during mechanical ventilation is significantly impacted by nebulizer type and placement. Optimizing these factors improves lung deposition for treating Gram-negative bacterial pneumonia.
Area of Science:
- Pharmacology
- Respiratory Medicine
- Biomedical Engineering
Background:
- Nebulized polymyxin B (PMB) is crucial for treating hospital-acquired and ventilator-associated pneumonia caused by multidrug-resistant Gram-negative bacteria.
- Pulmonary delivery of PMB during invasive mechanical ventilation is not well understood.
Purpose of the Study:
- To assess the in vitro and in silico performance of nebulized PMB delivery during invasive mechanical ventilation.
- To evaluate the impact of nebulizer type, position, and artificial airway on PMB aerosol deposition in the lungs.
Main Methods:
- Utilized an in vitro adult mechanical ventilation model.
- Compared vibrating mesh nebulizer (VMN) and jet nebulizer (JN) at various positions (standalone, 15 cm from Y-piece, humidifier's dry end).
- Employed multiple-path particle dosimetry and a five-lobe adult lung model for deposition prediction.
Main Results:
- Mechanical ventilation significantly reduced PMB delivered dose compared to standalone use.
- JN and nebulizer placement 15 cm from the Y-piece enhanced aerosol delivery.
- Ventilator circuits reduced total drug amount but increased fine particle fraction and predicted alveolar deposition.
Conclusions:
- Nebulizer type, circuit placement, and artificial airway type critically influence PMB aerosol pulmonary delivery.
- Optimizing these parameters is essential for effective PMB lung deposition during mechanical ventilation.
- This study provides crucial data for optimizing PMB nebulization strategies in critical care settings.
Related Concept Videos
Mechanical Ventilation II: Invasive Ventilation
Negative-Pressure Ventilators
Negative-pressure ventilators create a vacuum around the chest or body to draw air into the lungs, simulating breathing. This method does not require an...
Mechanical Ventilation III: Noninvasive Ventilation
Noninvasive Positive-Pressure Ventilation...
Mechanical Ventilation I: Indication and Settings
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...
Pulmonary Ventilation: Inhalation
Boyle's law becomes particularly pertinent when examining respiratory...
Assessment of Ventilation I: Respiratory Rate
A Ventilation assessment is critical for monitoring a patient's health status. Respiration, one of the most accessible vital signs, provides insights into the function of numerous body systems and can indicate serious health issues, such as brainstem injuries from head trauma.
Critical Guidelines for Assessing Ventilation:

