Dexamethasone induces caveolin-1 in vascular endothelial cells: implications for attenuated responses to VEGF

被引:23
|
作者
Igarashi, Junsuke [1 ]
Hashimoto, Takeshi [1 ]
Shoji, Kazuyo [2 ]
Yoneda, Kozo [2 ]
Tsukamoto, Ikuko [3 ]
Moriue, Tetsuya [2 ]
Kubota, Yasuo [2 ]
Kosaka, Hiroaki [1 ]
机构
[1] Kagawa Univ, Dept Cardiovasc Physiol, Takamatsu, Kagawa 760, Japan
[2] Kagawa Univ, Dept Dermatol, Takamatsu, Kagawa 760, Japan
[3] Kagawa Univ, Fac Med, Dept Pharmacobioinformat, Takamatsu, Kagawa 760, Japan
来源
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY | 2013年 / 304卷 / 08期
关键词
receptors; signal transduction; growth factors; endothelial function; angiogenesis; CUSHINGS-SYNDROME; DOWN-REGULATION; CARDIOVASCULAR RISK; NO SYNTHASE; SIGNALING PATHWAYS; ANGIOGENESIS; EXPRESSION; GROWTH; RECEPTORS; INDUCTION;
D O I
10.1152/ajpcell.00268.2012
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Igarashi J, Hashimoto T, Shoji K, Yoneda K, Tsukamoto I, Moriue T, Kubota Y, Kosaka H. Dexamethasone induces caveolin-1 in vascular endothelial cells: implications for attenuated responses to VEGF. Am J Physiol Cell Physiol 304: C790-C800, 2013. First published February 20, 2013; doi:10.1152/ajpcell.00268.2012.-Steroids exert direct actions on cardiovascular cells, although underlying molecular mechanisms remain incompletely understood. We examined if steroids modulate abundance of caveolin-1, a regulatory protein of cell-surface receptor pathways that regulates the magnitudes of endothelial response to vascular endothelial growth factor (VEGF). Dexamethasone, a synthetic glucocorticoid, induces caveolin-1 at both levels of protein and mRNA in a time- and dose-dependent manner in pharmacologically relevant concentrations in cultured bovine aortic endothelial cells. Aldosterone, a mineralocorticoid, but not the sex steroids 17 beta-estradiol, testosterone, or progesterone, elicits similar caveolin-1 induction. Caveolin-1 induction by dexamethasone and that by aldosterone were abrogated by RU-486, an inhibitor of glucocorticoid receptor, and by spironolactone, a mineralocorticoid receptor inhibitor, respectively. Dexamethasone attenuates VEGF-induced responses at the levels of protein kinases Akt and ERK1/2, small-G protein Rac1, nitric oxide production, and migration. When induction of caveolin-1 by dexamethasone is attenuated either by genetically by transient transfection with small interfering RNA or pharmacologically by RU-486, kinase responses to VEGF are rescued. Dexamethasone also increases expression of caveolin-1 protein in cultured human umbilical vein endothelial cells, associated with attenuated tube formation responses of these cells when cocultured with normal fibroblasts. Immunohistochemical analyses revealed that intraperitoneal injection of dexamethasone induces endothelial caveolin-1 protein in thoracic aorta and in lung artery in healthy male rats. Thus steroids functionally attenuate endothelial responses to VEGF via caveolin-1 induction at the levels of signal transduction, migration, and tube formation, identifying a novel point of cross talk between nuclear and cell-surface receptor signaling pathways.
引用
收藏
页码:C790 / C800
页数:11
相关论文
共 50 条
  • [1] Steroid Hormones Induce Caveolin-1 (cav-1) and Attenuate Vascular Endothelial Growth Factor (VEGF) Responses in Cultured Vascular Endothelial Cells (EC)
    Igarashi, Junsuke
    Hashimoto, Takeshi
    Shoji, Kazuyo
    Yoneda, Kozo
    Kubota, Yasuo
    Kosaka, Hiroaki
    CIRCULATION, 2010, 122 (21)
  • [2] Caveolin-1 regulates VEGF-stimulated angiogenic activities in prostate cancer and endothelial cells
    Tahir, Alahaldin A.
    Park, Sanghee
    Thompson, Timothy C.
    CANCER BIOLOGY & THERAPY, 2009, 8 (23) : 2286 - 2296
  • [3] Inhibitory effect of caveolin-1 in vascular endothelial cells, pericytes and smooth muscle cells
    Xu, Hongping
    Zhang, Liwei
    Chen, Wei
    Xu, Jiazhou
    Zhang, Ruting
    Liu, Ran
    Zhou, Lan
    Hu, Wenjie
    Ju, Rong
    Lee, Chunsik
    Lu, Weisi
    Kumar, Anil
    Li, Xuri
    Tang, Zhongshu
    ONCOTARGET, 2017, 8 (44) : 76165 - 76173
  • [4] Shear stress induces caveolin-1 translocation in cultured endothelial cells
    Sun, RJ
    Muller, S
    Stoltz, JF
    Wang, X
    EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2002, 30 (08): : 605 - 611
  • [5] VEGF signaling inside vascular endothelial cells and beyond
    Eichmann, Anne
    Simons, Michael
    CURRENT OPINION IN CELL BIOLOGY, 2012, 24 (02) : 188 - 193
  • [6] Knock down of caveolin-1 affects morphological and functional hallmarks of human endothelial cells
    Madaro, Luca
    Antonangeli, Fabrizio
    Favia, Annarita
    Esposito, Bianca
    Biamonte, Filippo
    Bouche, Marina
    Ziparo, Elio
    Sica, Gigliola
    Filippini, Antonio
    D'Alessio, Alessio
    JOURNAL OF CELLULAR BIOCHEMISTRY, 2013, 114 (08) : 1843 - 1851
  • [7] Electrical stimulation directly induces pre-angiogenic responses in vascular endothelial cells by signaling through VEGF receptors
    Zhao, M
    Bai, H
    Wang, E
    Forrester, JV
    McCaig, CD
    JOURNAL OF CELL SCIENCE, 2004, 117 (03) : 397 - 405
  • [8] Caveolin-1 Deficiency Induces Spontaneous Endothelial-to-Mesenchymal Transition in Murine Pulmonary Endothelial Cells in Vitro
    Li, Zhaodong
    Wermuth, Peter J.
    Benn, Bryan S.
    Lisanti, Michael P.
    Jimenez, Sergio A.
    AMERICAN JOURNAL OF PATHOLOGY, 2013, 182 (02) : 325 - 331
  • [9] EphB1 interaction with caveolin-1 in endothelial cells modulates caveolae biogenesis
    Tiruppathi, Chinnaswamy
    Regmi, Sushil C.
    Wang, Dong-Mei
    Mo, Gary C. H.
    Toth, Peter T.
    Vogel, Stephen M.
    Stan, Radu V.
    Henkemeyer, Mark
    Minshall, Richard D.
    Rehman, Jalees
    Malik, Asrar B.
    MOLECULAR BIOLOGY OF THE CELL, 2020, 31 (11) : 1167 - 1182
  • [10] Reciprocal regulation of eNOS and caveolin-1 functions in endothelial cells
    Chen, Zhenlong
    Oliveira, Suellen D. S.
    Zimnicka, Adriana M.
    Jiang, Ying
    Sharma, Tiffany
    Chen, Stone
    Lazarov, Orly
    Bonini, Marcelo G.
    Haus, Jacob M.
    Minshall, Richard D.
    MOLECULAR BIOLOGY OF THE CELL, 2018, 29 (10) : 1190 - 1202