The histone demethylase JMJD2B regulates endothelial-to-mesenchymal transition
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
Authors: Glaser, Simone F.; Heumueller, Andreas W.; Tombor, Lukas; Hofmann, Patrick; Muhly-Reinholz, Marion; Fischer, Ariane; Guenther, Stefan; Kokot, Karoline E.; Hassel, David; Kumar, Sandeep; Jo, Hanjoong; Boon, Reinier A.; Abplanalp, Wesley; John, David; Boeckel, Jes-Niels; Dimmeler, Stefanie
Abstract
Endothelial cells play an important role in maintenance of the vascular system and the repair after injury. Under proinflammatory conditions, endothelial cells can acquire a mesenchymal phenotype by a process named endothelial-to-mesenchymal transition (EndMT), which affects the functional properties of endothelial cells. Here, we investigated the epigenetic control of EndMT. We show that the histone demethylase JMJD2B is induced by EndMT-promoting, proinflammatory, and hypoxic conditions. Silencing of JMJD2B reduced TGF-beta 2-induced expression of mesenchymal genes, prevented the alterations in endothelial morphology and impaired endothelial barrier function. Endothelial-specific deletion of JMJD2B in vivo confirmed a reduction of EndMT after myocardial infarction. EndMT did not affect global H3K9me3 levels but induced a site-specific reduction of repressive H3K9me3 marks at promoters of mesenchymal genes, such as Calponin (CNN1), and genes involved in TGF-beta signaling, such as AKT Serine/Threonine Kinase 3 (AKT3) and Sulfatase 1 (SULF1). Silencing of JMJD2B prevented the EndMT-induced reduction of H3K9me3 marks at these promotors and further repressed these EndMT-related genes. Our study reveals that endothelial identity and function is critically controlled by the histone demethylase JMJD2B, which is induced by EndMT-promoting, proinflammatory, and hypoxic conditions, and supports the acquirement of a mesenchymal phenotype.
Induced differentiation of human gingival fibroblasts into VSMC-like cells
DIFFERENTIATION
Authors: Liu, Xuqian; Wang, Jie; Dong, Fusheng; Li, Hexiang; Hou, Yali
Abstract
Vascular smooth muscle cells (VSMCs) are major component of the vascular wall, and they play an essential role in maintaining the basic physiological function and stable structure of the Vascular wall. In the present study, human gingival fibroblasts (HGFs) were cultured and induced into VSMC-like cells in vitro to confirm that HGFs with properties of stem cells have the potential for differentiation. The epithelium isolated from patients was extracted from normal human gingiva consisting of epithelium and connective tissue. HGFs were first identified by morphological examination, as well as specific gene and protein expression, and then induced by 10 ng/mL PDGF-BB combined with 2 ng/mL of TGF-beta 1 for 28 days. After induction, ICS data indicated that induced VSMC-like cells were positive for alpha-SMA and SM-MHC, and IFA data showed that induced cells were positive for SM22 alpha and Cnn1. RT-PCR results demonstrated that alpha-SMA and SM-MHC mRNA were specifically expressed, and myofilament-like structures also appeared in induced cells. In conclusion, the data indicated that HGFs could differentiate to VSMC-like cells with typical VSMC morphologic, ultrastructural, and immunological characteristics via induction with PDGF-BB and TGF-beta 1.