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Updated: May 7, 2026

In vivo Evaluation of Mucociliary Clearance in Mice
Published on: December 18, 2020
Infants who develop bronchopulmonary dysplasia have an airway endotype defined by vimentin expression and ciliary
Laurie C Eldredge1,2,3, Yan Han1,2, Gail H Deutsch2,4
1Department of Pediatrics, Division of Pulmonary and Sleep Medicine, University of Washington School of Medicine, Seattle, WA, United States.
Insights
Preterm birth impairs airway development in Bronchopulmonary Dysplasia (BPD). This study reveals impaired airway epithelial cell differentiation and increased vimentin expression in evolving BPD, worsened by hyperoxia.
Area of Science:
- Neonatal respiratory medicine
- Cellular and molecular biology
- Developmental biology
Background:
- Bronchopulmonary Dysplasia (BPD) results from disrupted lung development post-preterm birth, causing structural airway deficits.
- Lower airway disease is a significant BPD phenotype linked to increased mortality.
- Molecular mechanisms of airway development disruption by preterm birth are poorly understood.
Purpose of the Study:
- Develop a human model for lower airway disease after preterm birth.
- Define a molecular endotype of evolving BPD (eBPD) at baseline and after injury.
Main Methods:
- Utilized an ex vivo organotypic Airway Epithelial Cell (AEC) model.
- Integrated patient samples with quantitative immunohistochemistry and RNA sequencing.
- Analyzed AECs from healthy controls and eBPD patients.
Main Results:
- eBPD-derived AECs showed reduced proliferation and impaired ciliated epithelium differentiation.
- An expanded vimentin-positive cell population with impaired differentiation markers was observed in eBPD AECs.
- eBPD AECs exhibited an exaggerated vimentin response to hyperoxia, mirroring infant BPD findings.
Conclusions:
- eBPD is linked to impaired AEC differentiation, increased vimentin expression, and ciliated cell loss.
- The organotypic model mimics prematurity effects on human airway cells.
- Hyperoxia may impair epithelial differentiation, causing lower airway dysfunction in BPD, highlighting the role of intermediate filaments.
Rationale:
Bronchopulmonary dysplasia (BPD) arises from disrupted lung development after preterm birth and produces structural deficits at every level of the respiratory tree. Lower airway disease is emerging as a clinically significant BPD phenotype with increased mortality, yet the molecular mechanisms whereby preterm birth disrupts airway development remain poorly defined.
Objectives:
To develop a human model of lower airway disease following preterm birth and to define a molecular endotype of evolving BPD (eBPD) at baseline and in response to injury.
Methods:
An ex vivo organotypic airway epithelial cell (AEC) model was combined with well-characterized pathologic and transcriptomic patient samples for quantitative immunohistochemistry and RNA-sequencing analyses.
Measurements And Main Results:
Compared to AECs from healthy controls, eBPD-derived AECs exhibited reduced proliferation, impaired differentiation to ciliated epithelium, and expansion of a vimentin-positive population with a transcriptional profile associated with impaired AEC differentiation. Following hyperoxia exposure, eBPD-derived AECs mounted a robust vimentin response ex vivo, paralleling increased vimentin expression observed in airway cells from lung tissue of human infants with BPD.
Conclusions:
Using an organotypic model of neonatal airway differentiation, we demonstrate eBPD is associated with impaired AEC differentiation, increased vimentin-expression and concomitant loss of ciliated cells, and an exaggerated vimentin response to hyperoxic injury. These findings mimic the effects of prematurity in airway cells in human patients. These data support a mechanism whereby hyperoxia leads to impaired epithelial differentiation and associated lower airway dysfunction in BPD and inform future mechanistic studies interrogating the role of intermediate filaments in maladaptive epithelial repair.
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