Related Experiment Video
Updated: Feb 15, 2026

Development of a Neonatal Piglet Acute Lung Injury Model Recreating the Early Environment of Preterm Infant Lungs
Published on: October 31, 2025
CCN5 in alveolar epithelial proliferation and differentiation during neonatal lung oxygen injury
Najla Fiaturi1,2, Joshua W Russo3,4, Heber C Nielsen4,5
1Department of Medical Education, Tufts University School of Medicine, 136 Harrison Avenue, Boston, MA, 02111, USA.
Insights
The matricellular protein CCN5 plays a role in neonatal lung injury, potentially contributing to bronchopulmonary dysplasia (BPD) by affecting alveolar cell proliferation and differentiation.
Area of Science:
- Neonatal lung development and disease
- Cellular biology and signaling pathways
Background:
- Premature infants face high mortality due to lung immaturity and respiratory distress syndrome (RDS).
- Bronchopulmonary dysplasia (BPD), a chronic lung disease, is an increased risk with RDS treatments like oxygen and respiratory support.
- Mechanisms of normal alveolar development and BPD pathogenesis remain unclear.
Purpose of the Study:
- To investigate the role of the matricellular protein CCN5 in the development of bronchopulmonary dysplasia (BPD).
Main Methods:
- Examined CCN5 expression in cultured alveolar type II cells.
- Utilized siRNA to target CCN5 in cell culture experiments.
- Analyzed CCN5 protein levels in a mouse model of hyperoxia-induced BPD.
Main Results:
- CCN5 protein levels were low in non-proliferating alveolar type II cells and increased during proliferation.
- siRNA targeting of CCN5 inhibited alveolar type II cell proliferation and migration.
- In a hyperoxia-induced BPD mouse model, CCN5 was elevated in proliferating alveolar type I cells, suggesting a role in injury response.
Conclusions:
- Hyperoxic injury in immature lungs may induce type I cell proliferation and type II to type I cell trans-differentiation.
- CCN5 expression is implicated in the injury response mechanism of BPD.
- Further study of CCN5 in neonatal lung injury can elucidate BPD pathophysiology and inform therapeutic strategies.
Abstract:
Lung immaturity is the major cause of morbidity and mortality in premature infants, especially those born <28 weeks of gestation. These infants are at high risk of developing respiratory distress syndrome (RDS), a lung disease caused by insufficient surfactant production and immaturity of saccular/alveolar type II epithelial cells in the lung. RDS treatment includes oxygen and respiratory support that improve survival but also increase the risk for bronchopulmonary dysplasia (BPD), a chronic lung disease characterized by arrested alveolarization, airway hyperreactivity, and pulmonary hypertension. The mechanisms regulating normal alveolar development and how injury disrupts normal development to cause BPD are not well understood. We examined the role of the matricellular protein CCN5 (Cysteine-rich protein 61/Connective tissue growth factor/Nephroblastoma-overexpressed protein) in the development of BPD. Cultured non-proliferating alveolar type II cells expressed low levels of CCN5 protein, and displayed higher levels during proliferation. siRNA targeting of CCN5 reduced alveolar type II cell proliferation and migration in cell culture. In a mouse model of hyperoxia-induced BPD, CCN5 protein was increased only in proliferating alveolar type I cells. Alveolar epithelial cells co-expressing markers of type II cells and type I cells also appeared. The results suggest that hyperoxic injury in immature lungs induces proliferation of type I cells and trans-differentiation of type II cells into type I cells. We propose that the mechanism of the injury response in BPD includes CCN5 expression. Study of CCN5 in neonatal alveolar injury will further our understanding of BPD pathophysiology while providing a mechanistic foundation for therapeutic approaches.
Related Concept Videos
Alveoli and Alveolar Ducts
Abnormal Proliferation
Lung Capacity
Oxygen Transport in the Blood
Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen
Venturi Mask
The Venturi mask, named after the Venturi effect, is designed to deliver precise oxygen concentrations. It consists of a large tube with an oxygen inlet that narrows down, causing a pressure drop that pulls air in through adjustable side ports. The mask is a lightweight,...
Cells Coordinate Growth and Proliferation

