Related Experiment Video
Updated: Feb 3, 2026

Pressure Controlled Ventilation to Induce Acute Lung Injury in Mice
Published on: May 5, 2011
Ventilator-induced lung injury is aggravated by antibiotic mediated microbiota depletion in mice
Sandra-Maria Wienhold1, Mario Macrì1,2, Geraldine Nouailles1
1Division of Pulmonary Inflammation, Charité - Universitätsmedizin Berlin, corporate member of Freie Universität Berlin, Humboldt-Universität zu Berlin, and Berlin Institute of Health, Berlin, Germany.
Background:
Antibiotic exposure alters the microbiota, which can impact the inflammatory immune responses. Critically ill patients frequently receive antibiotic treatment and are often subjected to mechanical ventilation, which may induce local and systemic inflammatory responses and development of ventilator-induced lung injury (VILI). The aim of this study was to investigate whether disruption of the microbiota by antibiotic therapy prior to mechanical ventilation affects pulmonary inflammatory responses and thereby the development of VILI.
Methods:
Mice underwent 6-8 weeks of enteral antibiotic combination treatment until absence of cultivable bacteria in fecal samples was confirmed. Control mice were housed equally throughout this period. VILI was induced 3 days after completing the antibiotic treatment protocol, by high tidal volume (HTV) ventilation (34 ml/kg; positive end-expiratory pressure = 2 cmH2O) for 4 h. Differences in lung function, oxygenation index, pulmonary vascular leakage, macroscopic assessment of lung injury, and leukocyte and lymphocyte differentiation were assessed. Control groups of mice ventilated with low tidal volume and non-ventilated mice were analyzed accordingly.
Results:
Antibiotic-induced microbiota depletion prior to HTV ventilation led to aggravation of VILI, as shown by increased pulmonary permeability, increased oxygenation index, decreased pulmonary compliance, enhanced macroscopic lung injury, and increased cytokine/chemokine levels in lung homogenates.
Conclusions:
Depletion of the microbiota by broad-spectrum antibiotics prior to HTV ventilation renders mice more susceptible to developing VILI, which could be clinically relevant for critically ill patients frequently receiving broad-spectrum antibiotics.
Insights
Antibiotic-induced gut microbiota depletion worsens ventilator-induced lung injury (VILI) in mice. This suggests that antibiotics may increase susceptibility to VILI in critically ill patients requiring mechanical ventilation.
Area of Science:
- Microbiology
- Immunology
- Pulmonary Medicine
Background:
- Antibiotic use alters the gut microbiota, influencing inflammatory responses.
- Critically ill patients often receive antibiotics and mechanical ventilation, increasing VILI risk.
Purpose of the Study:
- To investigate if antibiotic-induced microbiota disruption affects pulmonary inflammation and VILI development.
Main Methods:
- Mice received 6-8 weeks of enteral antibiotics until fecal samples showed no cultivable bacteria.
- Ventilator-induced lung injury (VILI) was induced via high tidal volume (HTV) ventilation.
- Lung function, oxygenation, vascular leakage, lung injury, and immune cell profiles were assessed.
Main Results:
- Microbiota depletion aggravated VILI, indicated by increased pulmonary permeability and oxygenation index.
- Decreased pulmonary compliance and enhanced macroscopic lung injury were observed.
- Elevated cytokine and chemokine levels in lung homogenates were noted.
Conclusions:
- Gut microbiota depletion by antibiotics increases susceptibility to VILI.
- Findings suggest clinical relevance for critically ill patients on broad-spectrum antibiotics.
More Related Videos
Related Concept Videos
Antibiotic Selection
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...
Lung Capacity
MOSFET: Depletion Mode
The primary characteristic of depletion-mode MOSFETs is their ability to conduct current between the drain and source terminals without gate bias. This inherent conductivity...
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...

