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Differentiation of human airway epithelia is dependent on erbB2
Paola D Vermeer1, Lacey Panko, Philip Karp
1Department of Internal Medicine, University of Iowa Roy J. and Lucille A. Carver College of Medicine, Iowa City, 52242, USA.
Abstract:
A clinical case documented a reversible change in airway epithelial differentiation that coincided with the initiation and discontinuation of trastuzumab, an anti-erbB2 antibody. This prompted the investigation into whether blocking the erbB2 receptor alters differentiation of the airway epithelium. To test this hypothesis, we treated an in vitro model of well-differentiated human airway epithelia with trastuzumab or heregulin-alpha, an erbB ligand. In addition, coculturing with human lung fibroblasts tested whether in vivo subepithelial fibroblasts function as an endogenous source of ligands able to activate erbB receptors expressed by the overlying epithelial cells. Epithelia were stained with hematoxylin and eosin and used for morphometric analysis. Trastuzumab treatment decreased the ciliated cell number by 49% and increased the metaplastic, flat cell number by 640%. Heregulin-alpha treatment increased epithelial height and decreased the number of metaplastic and nonciliated columnar cells, whereas it increased the goblet cell number. We found that normal human lung fibroblasts express transforming growth factor-alpha, heparin-binding epidermal-like growth factor, epiregulin, heregulin-alpha, and amphiregulin, all of which are erbB ligands. Cocultures of airway epithelia with primary fibroblasts increased epithelial height comparable to that achieved following heregulin-alpha treatment. These data show that erbB2 stimulation is required for maintaining epithelial differentiation. Furthermore, the mesenchyme underlying the airway epithelium secretes a variety of erbB ligands that may direct various pathways of epithelial differentiation.
Insights
Blocking the erbB2 receptor with trastuzumab disrupts airway epithelial cell differentiation. Fibroblast-secreted ligands are crucial for maintaining normal airway epithelial structure and function.
Area of Science:
- Cell Biology
- Pulmonary Medicine
- Oncology
Background:
- Trastuzumab, an anti-erbB2 antibody, caused reversible airway epithelial changes in a clinical case.
- This observation prompted an investigation into the role of erbB2 signaling in airway epithelial differentiation.
Observation:
- In vitro models of human airway epithelia were treated with trastuzumab or heregulin-alpha (an erbB ligand).
- Co-culturing with human lung fibroblasts assessed the role of subepithelial fibroblasts in activating epithelial erbB receptors.
Findings:
- Trastuzumab treatment significantly reduced ciliated cells and increased metaplastic cells.
- Heregulin-alpha increased epithelial height and goblet cell number while decreasing metaplastic cells.
- Human lung fibroblasts express multiple erbB ligands, including TGF-α, HB-EGF, epiregulin, heregulin-alpha, and amphiregulin.
Implications:
- erbB2 receptor stimulation is essential for maintaining normal airway epithelial differentiation.
- The underlying mesenchyme, via secreted erbB ligands, plays a critical role in directing airway epithelial differentiation pathways.
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