squamous epithelial cell
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2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Roman Stavniichuk ◽  
Ann DeLaForest ◽  
Cayla A. Thompson ◽  
James Miller ◽  
Rhonda F. Souza ◽  
...  

AbstractGATA4 promotes columnar epithelial cell fate during gastric development. When ectopically expressed in the developing mouse forestomach, the tissue emerges as columnar-like rather than stratified squamous with gene expression changes that parallel those observed in the pre-malignant squamous to columnar metaplasia known as Barrett’s esophagus (BE). GATA4 mRNA up-regulation and gene amplification occur in BE and its associated cancer, esophageal adenocarcinoma (EAC), and GATA4 gene amplification correlates with poor patient outcomes. Here, we explored the effect of ectopic expression of GATA4 in mature human esophageal squamous epithelial cells. We found that GATA4 expression in esophageal squamous epithelial cells compromised squamous cell marker gene expression and up-regulated expression of the canonical columnar cell cytokeratin KRT8. We observed GATA4 occupancy in the p63, KRT5, and KRT15 promoters, suggesting that GATA4 directly represses expression of squamous epithelial cell marker genes. Finally, we verified GATA4 protein expression in BE and EAC and found that exposure of esophageal squamous epithelial cells to acid and bile, known BE risk factors, induced GATA4 mRNA expression. We conclude that GATA4 suppresses expression of genes marking the stratified squamous epithelial cell lineage and that this repressive action by GATA4 may have implications in BE and EAC.


2020 ◽  
Author(s):  
Roman Stavniichuk ◽  
Ann DeLaForest ◽  
Cayla A. Thompson ◽  
James Miller ◽  
Rhonda F. Souza ◽  
...  

ABSTRACTMetaplasia often involves a change from one cell type to another that was present during organogenesis. The embryonic esophagus is initially lined by columnar cells that are replaced by squamous cells, and metaplasia in Barrett’s esophagus (BE) involves a change from squamous to columnar cells in the setting of gastroesophageal reflux. Here, we explored the effect of ectopic expression of the essential developmental transcription factor GATA4 on squamous epithelial cell gene expression using human esophageal squamous epithelial cells. We found that GATA4 protein, although absent in mature human esophageal squamous epithelium, was present in BE and esophageal adenocarcinoma (EAC). Moreover, acid and bile induced GATA4 mRNA in esophageal squamous epithelial cells. Ectopic GATA4 expression in esophageal squamous epithelial cells generally compromised squamous cell marker gene expression, although the extent varied between cell lines studied. We observed GATA4 occupancy in the p63, KRT5, and KRT15 gene promoters, suggesting that GATA4 can directly repress expression of typical squamous epithelial cell marker genes. Overall, our data suggest a mechanism whereby GATA4 expression in abnormal esophageal cells, possibly induced by reflux, supports a columnar metaplastic cell identity by repressing expression of key genes required to program stratified squamous epithelial cell identity.


2019 ◽  
Vol 38 (2) ◽  
pp. 460-463
Author(s):  
Danielle K. Matz ◽  
Joanna Chuck ◽  
Robin J. Hosmer ◽  
Hannah C. Piper ◽  
Jane E. Link ◽  
...  

mBio ◽  
2017 ◽  
Vol 8 (6) ◽  
Author(s):  
Pauline Vitry ◽  
Claire Valotteau ◽  
Cécile Feuillie ◽  
Simon Bernard ◽  
David Alsteens ◽  
...  

ABSTRACT Bacterial pathogens that colonize host surfaces are subjected to physical stresses such as fluid flow and cell surface contacts. How bacteria respond to such mechanical cues is an important yet poorly understood issue. Staphylococcus aureus uses a repertoire of surface proteins to resist shear stress during the colonization of host tissues, but whether their adhesive functions can be modulated by physical forces is not known. Here, we show that the interaction of S. aureus clumping factor B (ClfB) with the squamous epithelial cell envelope protein loricrin is enhanced by mechanical force. We find that ClfB mediates S. aureus adhesion to loricrin through weak and strong molecular interactions both in a laboratory strain and in a clinical isolate. Strong forces (~1,500 pN), among the strongest measured for a receptor-ligand bond, are consistent with a high-affinity “dock, lock, and latch” binding mechanism involving dynamic conformational changes in the adhesin. Notably, we demonstrate that the strength of the ClfB-loricrin bond increases as mechanical force is applied. These findings favor a two-state model whereby bacterial adhesion to loricrin is enhanced through force-induced conformational changes in the ClfB molecule, from a weakly binding folded state to a strongly binding extended state. This force-sensitive mechanism may provide S. aureus with a means to finely tune its adhesive properties during the colonization of host surfaces, helping cells to attach firmly under high shear stress and to detach and spread under low shear stress. IMPORTANCE Staphylococcus aureus colonizes the human skin and the nose and can cause various disorders, including superficial skin lesions and invasive infections. During nasal colonization, the S. aureus surface protein clumping factor B (ClfB) binds to the squamous epithelial cell envelope protein loricrin, but the molecular interactions involved are poorly understood. Here, we unravel the molecular mechanism guiding the ClfB-loricrin interaction. We show that the ClfB-loricrin bond is remarkably strong, consistent with a high-affinity “dock, lock, and latch” binding mechanism. We discover that the ClfB-loricrin interaction is enhanced under tensile loading, thus providing evidence that the function of an S. aureus surface protein can be activated by physical stress. IMPORTANCE Staphylococcus aureus colonizes the human skin and the nose and can cause various disorders, including superficial skin lesions and invasive infections. During nasal colonization, the S. aureus surface protein clumping factor B (ClfB) binds to the squamous epithelial cell envelope protein loricrin, but the molecular interactions involved are poorly understood. Here, we unravel the molecular mechanism guiding the ClfB-loricrin interaction. We show that the ClfB-loricrin bond is remarkably strong, consistent with a high-affinity “dock, lock, and latch” binding mechanism. We discover that the ClfB-loricrin interaction is enhanced under tensile loading, thus providing evidence that the function of an S. aureus surface protein can be activated by physical stress.


2017 ◽  
Vol 67 (5) ◽  
pp. 468-471
Author(s):  
Ünal Kantekin Çiğdem ◽  
Şahin Sevinç ◽  
Bolat Esef ◽  
Öztürk Süreyya ◽  
Gencer Muzaffer ◽  
...  

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