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  3. Biochemistry and Molecular Biology / 生物化學暨分子生物學研究所
  4. Homocysteine inhibits arterial endothelial cell growth through transcriptional downregulation of fibroblast growth factor-2 involving G protein and DNA methylation
 
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Homocysteine inhibits arterial endothelial cell growth through transcriptional downregulation of fibroblast growth factor-2 involving G protein and DNA methylation

Journal
Circulation Research
Journal Volume
102
Journal Issue
8
Pages
933-941
Date Issued
2008
Author(s)
PO-YUAN CHANG  
SHAO-CHUN LU 
CHII-MING LEE  
Chen Y.-J.
Dugan T.A.
Huang W.-H.
Chang S.-F.
Liao W.S.L.
Chen C.-H.
Lee Y.-T.
DOI
10.1161/CIRCRESAHA.108.171082
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-42549135938&doi=10.1161%2fCIRCRESAHA.108.171082&partnerID=40&md5=62c6c3e4c98de92d8eb3a154908cfc48
https://scholars.lib.ntu.edu.tw/handle/123456789/454632
Abstract
Homocysteine (Hcy) contributes to atherogenesis and angiostasis by altering the phenotype of arterial endothelial cells (ECs). The present study was aimed at elucidating potential mechanisms by which Hcy can slow EC proliferation and induce EC apoptosis, thereby disrupting endothelial integrity. Given the strong mitogenic and antiapoptotic properties of fibroblast growth factor (FGF)2, we examined whether Hcy can modulate its expression. In cultured human coronary and bovine aortic ECs, Hcy exerted time- and concentration-dependent (0 to 500 micromol/L) reduction of the mRNA and protein levels of FGF2, whereas vascular endothelial growth factor expression was not affected until Hcy reached a proapoptotic 500 micromol/L. By testing a panel of signal transduction inhibitors, we found that the Hcy-induced downregulation of FGF2 was specifically attenuated by pertussis toxin, an inhibitor of Gi protein signaling. Hcy induced cell cycle arrest at the G(1)/S transition and increased TUNEL-positive apoptotic cells in a graded manner. These effects were effectively counteracted by exogenous FGF2. Reporter gene assays showed that Hcy downregulated FGF2 by transcriptional repression of the gene promoter encompassed in a CpG dinucleotide-rich island. This region was heavily methylated at the cytosine residues by Hcy despite decreased methylation potential (S-adenosylmethionine to S-adenosylhomocysteine ratio). Normal levels of FGF2 transcription were restored to ECs simultaneously exposed to Hcy and 5-aza-deoxycytidine. We conclude that homocysteine disrupts the growth and survival of ECs through a G protein-mediated pathway associated with altered promoter DNA methylation and the transcriptional repression of FGF2.
Type
journal article

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