Ionizing radiation induces a motile phenotype in human carcinoma cells in vitro through hyperactivation of the TGF-beta signaling pathway

被引:0
作者
Cedric Carl
Anne Flindt
Julian Hartmann
Markus Dahlke
Dirk Rades
Jürgen Dunst
Hendrik Lehnert
Frank Gieseler
Hendrik Ungefroren
机构
[1] UKSH,Department of Internal Medicine I
[2] UKSH,Department of Radiation Oncology
[3] UKSH,Department of Radiation Oncology
来源
Cellular and Molecular Life Sciences | 2016年 / 73卷
关键词
Irradiation; TGF-beta; Activin; SMAD; Cell motility; Carcinoma cells;
D O I
暂无
中图分类号
学科分类号
摘要
Radiotherapy, a major treatment modality against cancer, can lead to secondary malignancies but it is uncertain as to whether tumor cells that survive ionizing radiation (IR) treatment undergo epithelial–mesenchymal transition (EMT) and eventually become invasive or metastatic. Here, we have tested the hypothesis that the application of IR (10 MeV photon beams, 2–20 Gy) to lung and pancreatic carcinoma cells induces a migratory/invasive phenotype in these cells by hyperactivation of TGF-β and/or activin signaling. In accordance with this assumption, IR induced gene expression patterns and migratory responses consistent with an EMT phenotype. Moreover, in A549 cells, IR triggered the synthesis and secretion of both TGF-β1 and activin A as well as activation of intracellular TGF-β/activin signaling as evidenced by Smad phosphorylation and transcriptional activation of a TGF-β-responsive reporter gene. These responses were sensitive to SB431542, an inhibitor of type I receptors for TGF-β and activin. Likewise, specific antibody-mediated neutralization of soluble TGF-β, or dominant-negative inhibition of the TGF-β receptors, but not the activin type I receptor, alleviated IR-induced cell migration. Moreover, the TGF-β-specific approaches also blocked IR-dependent TGF-β1 secretion, Smad phosphorylation, and reporter gene activity, collectively indicating that autocrine production of TGF-β(s) and subsequent activation of TGF-β rather than activin signaling drives these changes. IR strongly sensitized cells to further increase their migration in response to recombinant TGF-β1 and this was accompanied by upregulation of TGF-β receptor expression. Our data raise the possibility that hyperactivation of TGF-β signaling during radiotherapy contributes to EMT-associated changes like metastasis, cancer stem cell formation and chemoresistance of tumor cells.
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页码:427 / 443
页数:16
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共 194 条
[1]  
Nuevemann D(2006)Stable expression of temperature-sensitive p53: a suitable model to study wild-type p53 function in pancreatic carcinoma cells Oncol Rep 16 575-579
[2]  
Christgen M(1991)Radiation enhancement of metastasis: a review Clin Exp Metastasis 9 77-104
[3]  
Ungefroren H(2008)Does ionizing radiation stimulate cancer invasion and metastasis? Bull Cancer 95 292-300
[4]  
Kalthoff H(2012)Cancer stem cells and epithelial-mesenchymal transition: concepts and molecular links Semin Cancer Biol 22 396-403
[5]  
von Essen CF(2013)Non-small cell lung cancer cells survived ionizing radiation treatment display cancer stem cell and epithelial-mesenchymal transition phenotypes Mol Cancer 12 94-33
[6]  
Madani I(2011)Pancreatic cancer: understanding and overcoming chemoresistance Nat Rev Gastroenterol Hepatol 8 27-7018
[7]  
De Neve W(2006)Radiation-enhanced hepatocellular carcinoma cell invasion with MMP-9 expression through PI3K/Akt/NF-kappaB signal transduction pathway Oncogene 25 7009-1423
[8]  
Mareel M(2010)Bcl-XL and STAT3 mediate malignant actions of gamma-irradiation in lung cancer cells Cancer Sci 101 1417-251
[9]  
Scheel C(2013)Tumors as organs: biologically augmenting radiation therapy by inhibiting transforming growth factor β activity in carcinomas Semin Radiat Oncol. 23 242-56
[10]  
Weinberg RA(2009)Role of Radiation-induced TGF-beta signaling in cancer therapy Mol Cell Pharmacol. 1 44-4129