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Mechanosensing role of caveolae and caveolar constituents in human endothelial cells
- Source :
- Journal of cellular physiology, 197 (2003): 198–204., info:cnr-pdr/source/autori:Spisni E, Bianco MC, Griffoni C, Toni M, D'Angelo R, Santi S, Riccio M, Tomasi V/titolo:Mechanosensing role of caveolae and caveolar constituents in human endothelial cells./doi:/rivista:Journal of cellular physiology (Print)/anno:2003/pagina_da:198/pagina_a:204/intervallo_pagine:198–204/volume:197
- Publication Year :
- 2003
-
Abstract
- A variety of evidence suggests that endothelial cell functions are impaired in altered gravity conditions. Nevertheless, the effects of hypergravity on endothelial cell physiology remain unclear. In this study we cultured primary human endothelial cells under mild hypergravity conditions for 24-48 h, then we evaluated the changes in cell cycle progression, caveolin1 gene expression and in the caveolae status by confocal microscopy. Moreover, we analyzed the activity of enzymes known to be resident in caveolae such as endothelial nitric oxide synthase (eNOS), cycloxygenase 2 (COX-2), and prostacyclin synthase (PGIS). Finally, we performed a three-dimensional in vitro collagen gel test to evaluate the modification of the angiogenic responses. Results indicate that hypergravity shifts endothelial cells to G 0/G1 phase of cell cycle, reducing S phase, increasing caveolin1 gene expression and causing an increased distribution of caveolae in the cell interior. Hypergravity also increases COX-2 expression, nitric oxide (NO) and prostacyclin (PG12) production, and inhibits angiogenesis as evaluated by 3-D collagen gel test, through a pathway not involving apoptosis. Thus, endothelial cell caveolae may be responsible for adaptation of endothelium to hypergravity and the mechanism of adaptation involves an increased caveolin1 gene expression coupled to upregulation of vasodilators as NO and PG12. © 2003 Wiley-Liss, Inc.
- Subjects :
- Physiology
Angiogenesis
Clinical Biochemistry
Caveolin 1
COLOCALIZATION
ANGIOGENESIS
Mechanoreceptor
Cytochrome P-450 Enzyme System
Caveolae
NITRIC-OXIDE SYNTHASE
STRESS-DEPENDENT ACTIVATION
SIGNAL-REGULATED KINASE
GENE-EXPRESSION
MEMBRANE MICRODOMAINS
MICE
MECHANOTRANSDUCTION
CYCLOOXYGENASE-2
Membrane Protein
Cells, Cultured
biology
Cell Cycle
Adaptation, Physiological
Cell biology
Up-Regulation
Intramolecular Oxidoreductases
Isoenzymes
Nitric oxide synthase
Endothelial stem cell
Vasodilation
medicine.anatomical_structure
Mechanoreceptors
Human
Endothelium
Caveolin
Intramolecular Oxidoreductase
Hypergravity
Nitric Oxide
Caveolins
Prostacyclin synthase
medicine
Humans
Interphase
Prostaglandin-Endoperoxide Synthase
Membrane Proteins
Cell Biology
Isoenzyme
Prostaglandin-Endoperoxide Synthases
Cyclooxygenase 2
biology.protein
Nitric Oxide Synthase
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Journal of cellular physiology, 197 (2003): 198–204., info:cnr-pdr/source/autori:Spisni E, Bianco MC, Griffoni C, Toni M, D'Angelo R, Santi S, Riccio M, Tomasi V/titolo:Mechanosensing role of caveolae and caveolar constituents in human endothelial cells./doi:/rivista:Journal of cellular physiology (Print)/anno:2003/pagina_da:198/pagina_a:204/intervallo_pagine:198–204/volume:197
- Accession number :
- edsair.doi.dedup.....4067125e863977b9ee5c10ef7e2f861f