TGFβ controls alveolar type 1 epithelial cell plasticity and alveolar matrisome gene transcription
Insights
Transforming growth factor beta (TGFβ) signaling is crucial for maintaining alveolar epithelial cell type 1 (AT1) fate and lung development. Loss of TGFβ signaling in AT1 cells leads to cell reprogramming and persistent pulmonary architectural changes.
Area of Science:
- Pulmonary Medicine
- Developmental Biology
- Cell Biology
Background:
- Premature birth can lead to bronchopulmonary dysplasia (BPD), a chronic lung disease affecting infants and adults.
- The TGFβ superfamily is implicated in BPD, but its specific cell targets in lung development are unknown.
Conclusions:
- TGFβ signaling is intrinsically required for maintaining AT1 cell identity and function.
- AT1 cells are key regulators of the alveolar "matrisome" (ECM).
- These findings offer insights into BPD pathogenesis and potential therapeutic targets.
Abstract:
Premature birth disrupts normal lung development and places infants at risk for bronchopulmonary dysplasia (BPD), a disease increasing in incidence which disrupts lung health throughout the lifespan. The TGFβ superfamily has been implicated in BPD pathogenesis, however, what cell lineage it impacts remains unclear. We show that Tgfbr2 is critical for AT1 cell fate maintenance and function. Loss of Tgfbr2 in AT1 cells during late lung development leads to AT1-AT2 cell reprogramming and altered pulmonary architecture, which persists into adulthood. Restriction of fetal lung stretch and associated AT1 cell spreading through a model of oligohydramnios enhances AT1-AT2 reprogramming. Transcriptomic and proteomic analysis reveal the necessity of Tgfbr2 expression in AT1 cells for extracellular matrix production. Moreover, TGFβ signaling regulates integrin transcription to alter AT1 cell morphology, which further impacts ECM expression through changes in mechanotransduction. These data reveal the cell intrinsic necessity of TGFβ signaling in maintaining AT1 cell fate and reveal this cell lineage as a major orchestrator of the alveolar matrisome.
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