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Carbon Ion Radiation Inhibits Glioma and Endothelial Cell Migration Induced by Secreted VEGF
Author(s) -
Yang Liu,
Yuanyuan Liu,
Chao Sun,
Lu Gan,
Luwei Zhang,
Aihong Mao,
Yuting Du,
Rong Zhou,
Hong Zhang
Publication year - 2014
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0098448
Subject(s) - angiogenesis , glioma , cell migration , carcinogenesis , cancer research , endothelial stem cell , vascular endothelial growth factor , chemistry , microbiology and biotechnology , biology , cell , in vitro , biochemistry , vegf receptors , gene
This study evaluated the effects of carbon ion and X-ray radiation and the tumor microenvironment on the migration of glioma and endothelial cells, a key process in tumorigenesis and angiogenesis during cancer progression. C6 glioma and human microvascular endothelial cells were treated with conditioned medium from cultures of glioma cells irradiated at a range of doses and the migration of both cell types, tube formation by endothelial cells, as well as the expression and secretion of migration-related proteins were evaluated. Exposure to X-ray radiation-conditioned medium induced dose-dependent increases in cell migration and tube formation, which were accompanied by an upregulation of vascular endothelial growth factor ( VEGF ) and matrix metalloproteinase ( MMP ) -2 and -9 expression. However, glioma cells treated with conditioned medium of cells irradiated at a carbon ion dose of 4.0 Gy showed a marked decrease in migratory potential and VEGF secretion relative to non-irradiated cells. The application of recombinant VEGF165 stimulated migration in glioma and endothelial cells, which was associated with increased FAK phosphorylation at Tyr861, suggesting that the suppression of cell migration by carbon ion radiation could be via VEGF -activated FAK signaling. Taken together, these findings indicate that carbon ion may be superior to X-ray radiation for inhibiting tumorigenesis and angiogenesis through modulation of VEGF level in the glioma microenvironment.

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