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Updated: Jun 5, 2025

Murine Dermal Fibroblast Isolation by FACS
Published on: January 7, 2016
Impaired myofibroblast proliferation is a central feature of pathologic post-natal alveolar simplification
Imran S Khan1,2, Christopher Molina2,3,4, Xin Ren2,3,4
1Division of Neonatology, Department of Pediatrics, UCSF, San Francisco, United States.
Insights
Impaired myofibroblast proliferation, not increased TGFβ signaling, drives alveolar simplification in infant lung disease models. Therapeutics targeting myofibroblast proliferation may offer new treatments for bronchopulmonary dysplasia (BPD).
Area of Science:
- Pulmonary Medicine
- Developmental Biology
- Neonatology
Background:
- Bronchopulmonary dysplasia (BPD) in premature infants causes impaired gas exchange due to simplified alveoli and abnormal lung vasculature.
- Current clinical advances improve survival but not BPD incidence, highlighting the need for targeted therapies.
- Increased transforming growth factor-beta (TGFβ) signaling and myofibroblast changes are implicated in BPD, but their roles are unclear.
Purpose of the Study:
- To identify shared mechanisms contributing to BPD pathogenesis using murine models of alveolar simplification.
- To investigate the functional significance of TGFβ signaling and myofibroblast populations in BPD development.
Main Methods:
- Utilized multiple murine models of alveolar simplification.
- Performed comparative single-cell RNA sequencing to analyze cellular changes and gene expression.
- Employed pharmacologic and genetic approaches to manipulate TGFβ signaling and myofibroblast proliferation.
Main Results:
- Single-cell RNA sequencing revealed a significant loss of myofibroblasts and signatures of increased TGFβ signaling, cell cycle arrest, and impaired proliferation in BPD models.
- Inhibition of TGFβ signaling did not prevent, and sometimes worsened, alveolar simplification.
- Impaired myofibroblast proliferation was identified as a central feature, and its inhibition was sufficient to cause pathological alveolar simplification.
Conclusions:
- Impaired myofibroblast proliferation, rather than increased TGFβ signaling, is a critical driver of alveolar simplification in BPD pathogenesis.
- Therapeutic strategies aimed at restoring myofibroblast proliferation hold potential for treating BPD.
Abstract:
Premature infants with bronchopulmonary dysplasia (BPD) have impaired alveolar gas exchange due to alveolar simplification and dysmorphic pulmonary vasculature. Advances in clinical care have improved survival for infants with BPD, but the overall incidence of BPD remains unchanged because we lack specific therapies to prevent this disease. Recent work has suggested a role for increased transforming growth factor-beta (TGFβ) signaling and myofibroblast populations in BPD pathogenesis, but the functional significance of each remains unclear. Here, we utilize multiple murine models of alveolar simplification and comparative single-cell RNA sequencing to identify shared mechanisms that could contribute to BPD pathogenesis. Single-cell RNA sequencing reveals a profound loss of myofibroblasts in two models of BPD and identifies gene expression signatures of increased TGFβ signaling, cell cycle arrest, and impaired proliferation in myofibroblasts. Using pharmacologic and genetic approaches, we find no evidence that increased TGFβ signaling in the lung mesenchyme contributes to alveolar simplification. In contrast, this is likely a failed compensatory response, since none of our approaches to inhibit TGFβ signaling protect mice from alveolar simplification due to hyperoxia while several make simplification worse. In contrast, we find that impaired myofibroblast proliferation is a central feature in several murine models of BPD, and we show that inhibiting myofibroblast proliferation is sufficient to cause pathologic alveolar simplification. Our results underscore the importance of impaired myofibroblast proliferation as a central feature of alveolar simplification and suggest that efforts to reverse this process could have therapeutic value in BPD.
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