Related Experiment Video
Updated: Nov 12, 2025

Oxygen-Induced Retinopathy Model for Ischemic Retinal Diseases in Rodents
Published on: September 16, 2020
Hyperoxia-induced bronchopulmonary dysplasia: better models for better therapies
Kiersten Giusto1, Heather Wanczyk1, Todd Jensen1
1Department of Pediatrics, University of Connecticut Health Center, Farmington, 06106 CT, USA.
Insights
Bronchopulmonary dysplasia (BPD) treatment requires better models. This review highlights issues with current animal models and explores how in vitro models and stem cell therapies can improve understanding and clinical translation for BPD.
Area of Science:
- Neonatal Medicine
- Pulmonary Medicine
- Regenerative Medicine
Background:
- Bronchopulmonary dysplasia (BPD) is a chronic lung disease in preterm newborns caused by hyperoxia, with no current cure.
- BPD leads to long-term morbidity, including neurodevelopmental impairment and respiratory issues into adulthood.
- Existing animal models for BPD lack standardization, hindering clinical translation of potential treatments.
Purpose of the Study:
- To review concerns with current animal models of hyperoxia-induced BPD.
- To demonstrate the potential of in vitro models to complement in vivo studies for BPD research.
- To discuss the status of stem cell therapies for BPD and suggest model optimization.
Main Methods:
- Literature review of hyperoxia-induced lung injury models in animals and in vitro systems.
- Analysis of preclinical studies on stem cell-based therapies for BPD.
- Identification of variability in animal model parameters and lung injury endpoints.
Main Results:
- Current animal models for BPD exhibit significant variability in hyperoxia duration, animal type, and injury endpoints.
- In vitro models offer a way to investigate BPD molecular pathways and overcome animal model limitations.
- Stem cell therapies show promise but require further investigation within standardized preclinical models.
Conclusions:
- Standardization of animal models, including hyperoxia levels and injury assessment, is crucial for BPD research.
- In vitro models can enhance understanding of BPD pathogenesis and serve as a valuable complement to in vivo studies.
- Optimized models and therapeutic strategies, including stem cell therapies, are needed to advance BPD treatment and clinical translation.
Abstract:
Bronchopulmonary dysplasia (BPD) is a chronic lung disease caused by exposure to high levels of oxygen (hyperoxia) and is the most common complication that affects preterm newborns. At present, there is no cure for BPD. Infants can recover from BPD; however, they will suffer from significant morbidity into adulthood in the form of neurodevelopmental impairment, asthma and emphysematous changes of the lung. The development of hyperoxia-induced lung injury models in small and large animals to test potential treatments for BPD has shown some success, yet a lack of standardization in approaches and methods makes clinical translation difficult. In vitro models have also been developed to investigate the molecular pathways altered during BPD and to address the pitfalls associated with animal models. Preclinical studies have investigated the efficacy of stem cell-based therapies to improve lung morphology after damage. However, variability regarding the type of animal model and duration of hyperoxia to elicit damage exists in the literature. These models should be further developed and standardized, to cover the degree and duration of hyperoxia, type of animal model, and lung injury endpoint, to improve their translational relevance. The purpose of this Review is to highlight concerns associated with current animal models of hyperoxia-induced BPD and to show the potential of in vitro models to complement in vivo studies in the significant improvement to our understanding of BPD pathogenesis and treatment. The status of current stem cell therapies for treatment of BPD is also discussed. We offer suggestions to optimize models and therapeutic modalities for treatment of hyperoxia-induced lung damage in order to advance the standardization of procedures for clinical translation.
More Related Videos
Related Concept Videos
Treatment for Pulmonary Arterial Hypertension: Oxygen Therapy for Respiratory Failure
Oxygen therapy is vital in increasing and maintaining blood oxygen levels in PAH patients. As a result, it aids in reducing fatigue,...
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...
Acute Respiratory Failure-II
The underlying physiological abnormalities that contribute to hypoxemic respiratory failure include:
Chronic Obstructive Pulmonary Disease-II: Pathophysiology
Chronic Inflammation
Respiratory Assessment: Purpose and Indications
Objectives and Importance:
The primary goal of respiratory assessment is to evaluate patients at early risk of clinical deterioration. Since respiratory distress often precedes other signs of declining health, breathing patterns and sounds become a...
COPD: Management Using Bronchodilators and Corticosteroids

