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Medial edge epithelial cell fate during palatal fusion
C Martínez-Alvarez1, C Tudela, J Pérez-Miguelsanz
1Departamento de Ciencias Morfológicas I, Facultad de Medicina, Universidad Complutense de Madrid, Madrid, Spain.
Abstract:
To explain the disappearance of medial edge epithelial (MEE) cells during palatal fusion, programmed cell death, epithelial-mesenchymal transformation, and migration of these cells to the oral and nasal epithelia have been proposed. However, MEE cell death has not always been accepted as a mechanism involved in midline epithelial seam disappearance. Similarly, labeling of MEE cells with vital lipophilic markers has not led to a clear conclusion as to whether MEE cells migrate, transform into mesenchyme, or both. To clarify these controversies, we first utilized TUNEL techniques to detect apoptosis in mouse palates at the fusion stage and concomitantly analyzed the presence of macrophages by immunochemistry and confocal microscopy. Second, we in vitro infected the MEE with the replication-defective helper-free retroviral vector CXL, which carries the Escherichia coli lacZ gene, and analyzed beta-galactosidase activity in cells after fusion to follow their fate. Our results demonstrate that MEE cells die and transform into mesenchyme during palatal fusion and that dead cells are phagocytosed by macrophages. In addition, we have investigated the effects of the absence of transforming growth factor beta(3) (TGF-beta(3)) during palatal fusion. Using environmental scanning electron microscopy and TUNEL labeling we compared the MEE of the clefted TGF-beta(3) null and wild-type mice. We show that MEE cell death in TGF-beta(3) null palates is greatly reduced at the time of fusion, revealing that TGF-beta(3) has an important role as an inducer of apoptosis during palatal fusion. Likewise, the bulging cells observed on the MEE surface of wild-type mice prior to palatal shelf contact are very rare in the TGF-beta(3) null mutants. We hypothesize that these protruding cells are critical for palatal adhesion, being morphological evidence of increased cell motility/migration.
Insights
Medial edge epithelial (MEE) cells undergo programmed cell death and transform into mesenchyme during palatal fusion, with macrophages clearing dead cells. Transforming growth factor beta-3 (TGF-β3) is crucial for inducing this apoptosis.
Area of Science:
- Developmental Biology
- Cell Biology
- Molecular Biology
Background:
- The disappearance of medial edge epithelial (MEE) cells during palatal fusion is essential for proper craniofacial development.
- Proposed mechanisms include programmed cell death, epithelial-mesenchymal transformation, and cell migration, but conclusive evidence remains limited.
Purpose of the Study:
- To elucidate the fate of MEE cells during palatal fusion.
- To investigate the role of transforming growth factor beta-3 (TGF-β3) in MEE cell apoptosis during palatal fusion.
Main Methods:
- TUNEL assays to detect apoptosis in mouse palates.
- Immunochemistry and confocal microscopy to identify macrophages.
- In vitro retroviral vector infection (CXL) to track MEE cell fate.
- Environmental scanning electron microscopy to compare wild-type and TGF-β3 null mice.
Main Results:
- MEE cells undergo apoptosis and epithelial-mesenchymal transformation during palatal fusion.
- Macrophages phagocytose dead MEE cells.
- TGF-β3 null mice exhibit significantly reduced MEE cell apoptosis during fusion.
- TGF-β3 is identified as a key inducer of apoptosis in palatal fusion.
Conclusions:
- MEE cell death and transformation are critical events in palatal fusion.
- TGF-β3 plays a vital role in inducing MEE cell apoptosis during this process.
- TGF-β3 influences cell behavior, potentially affecting cell motility and adhesion.