DNA methyltransferase 3A controls intestinal epithelial barrier function and regeneration in the colon.
Antonella FazioDora BordoniJan W P KuiperSaskia Weber-StiehlStephanie T StengelPhilipp ArnoldDavid EllinghausGo ItoFlorian TranBerith MessnerAnna HenningJoana P BernardesRobert HäslerAnne LuziusSimon ImmFinn HinrichsenAndre FrankeSamuel HuberSusanna NikolausKonrad AdenStefan SchreiberFelix SommerGioacchino NatoliNeha MishraPhilip C RosenstielPublished in: Nature communications (2022)
Genetic variants in the DNA methyltransferase 3 A (DNMT3A) locus have been associated with inflammatory bowel disease (IBD). DNMT3A is part of the epigenetic machinery physiologically involved in DNA methylation. We show that DNMT3A plays a critical role in maintaining intestinal homeostasis and gut barrier function. DNMT3A expression is downregulated in intestinal epithelial cells from IBD patients and upon tumor necrosis factor treatment in murine intestinal organoids. Ablation of DNMT3A in Caco-2 cells results in global DNA hypomethylation, which is linked to impaired regenerative capacity, transepithelial resistance and intercellular junction formation. Genetic deletion of Dnmt3a in intestinal epithelial cells (Dnmt3a ΔIEC ) in mice confirms the phenotype of an altered epithelial ultrastructure with shortened apical-junctional complexes, reduced Goblet cell numbers and increased intestinal permeability in the colon in vivo. Dnmt3a ΔIEC mice suffer from increased susceptibility to experimental colitis, characterized by reduced epithelial regeneration. These data demonstrate a critical role for DNMT3A in orchestrating intestinal epithelial homeostasis and response to tissue damage and suggest an involvement of impaired epithelial DNMT3A function in the etiology of IBD.
Keyphrases
- dna methylation
- genome wide
- gene expression
- stem cells
- copy number
- end stage renal disease
- single molecule
- newly diagnosed
- mesenchymal stem cells
- cell therapy
- type diabetes
- chronic kidney disease
- high fat diet induced
- oxidative stress
- deep learning
- artificial intelligence
- metabolic syndrome
- peritoneal dialysis
- insulin resistance
- tissue engineering
- signaling pathway
- cell adhesion
- prognostic factors
- binding protein
- endoplasmic reticulum stress
- data analysis