The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress
<p>Abstract</p> <p>Introduction</p> <p>Stress has been shown to be a tumor promoting factor. Both clinical and laboratory studies have shown that chronic stress is associated with tumor growth in several types of cancer. Corticotropin Releasing Factor (CRF) is the major...
Main Authors: | , , , , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
BMC
2010-09-01
|
Series: | Molecular Cancer |
Subjects: | |
Online Access: | http://www.molecular-cancer.com/content/9/1/261 |
id |
doaj-3fc78c83928f44d1b74259bddd2d5e3d |
---|---|
record_format |
Article |
spelling |
doaj-3fc78c83928f44d1b74259bddd2d5e3d2020-11-24T21:40:44ZengBMCMolecular Cancer1476-45982010-09-019126110.1186/1476-4598-9-261The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stressStathopoulos Efstathios NRipoll JorgeRassouli OlgaDermitzaki EriniAndroulidaki AriadneMol BerberVenihaki MariaArranz AliciaGomariz Rosa PMargioris Andrew NTsatsanis Christos<p>Abstract</p> <p>Introduction</p> <p>Stress has been shown to be a tumor promoting factor. Both clinical and laboratory studies have shown that chronic stress is associated with tumor growth in several types of cancer. Corticotropin Releasing Factor (CRF) is the major hypothalamic mediator of stress, but is also expressed in peripheral tissues. Earlier studies have shown that peripheral CRF affects breast cancer cell proliferation and motility. The aim of the present study was to assess the significance of peripheral CRF on tumor growth as a mediator of the response to stress in vivo.</p> <p>Methods</p> <p>For this purpose we used the 4T1 breast cancer cell line in cell culture and in vivo. Cells were treated with CRF in culture and gene specific arrays were performed to identify genes directly affected by CRF and involved in breast cancer cell growth. To assess the impact of peripheral CRF as a stress mediator in tumor growth, Balb/c mice were orthotopically injected with 4T1 cells in the mammary fat pad to induce breast tumors. Mice were subjected to repetitive immobilization stress as a model of chronic stress. To inhibit the action of CRF, the CRF antagonist antalarmin was injected intraperitoneally. Breast tissue samples were histologically analyzed and assessed for neoangiogenesis.</p> <p>Results</p> <p>Array analysis revealed among other genes that CRF induced the expression of SMAD2 and β-catenin, genes involved in breast cancer cell proliferation and cytoskeletal changes associated with metastasis. Cell transfection and luciferase assays confirmed the role of CRF in WNT- β-catenin signaling. CRF induced 4T1 cell proliferation and augmented the TGF-β action on proliferation confirming its impact on TGFβ/SMAD2 signaling. In addition, CRF promoted actin reorganization and cell migration, suggesting a direct tumor-promoting action. Chronic stress augmented tumor growth in 4T1 breast tumor bearing mice and peripheral administration of the CRF antagonist antalarmin suppressed this effect. Moreover, antalarmin suppressed neoangiogenesis in 4T1 tumors in vivo.</p> <p>Conclusion</p> <p>This is the first report demonstrating that peripheral CRF, at least in part, mediates the tumor-promoting effects of stress and implicates CRF in SMAD2 and β-catenin expression.</p> http://www.molecular-cancer.com/content/9/1/261Corticotropin Releasing Hormonestress4T1breast cancer |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Stathopoulos Efstathios N Ripoll Jorge Rassouli Olga Dermitzaki Erini Androulidaki Ariadne Mol Berber Venihaki Maria Arranz Alicia Gomariz Rosa P Margioris Andrew N Tsatsanis Christos |
spellingShingle |
Stathopoulos Efstathios N Ripoll Jorge Rassouli Olga Dermitzaki Erini Androulidaki Ariadne Mol Berber Venihaki Maria Arranz Alicia Gomariz Rosa P Margioris Andrew N Tsatsanis Christos The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress Molecular Cancer Corticotropin Releasing Hormone stress 4T1 breast cancer |
author_facet |
Stathopoulos Efstathios N Ripoll Jorge Rassouli Olga Dermitzaki Erini Androulidaki Ariadne Mol Berber Venihaki Maria Arranz Alicia Gomariz Rosa P Margioris Andrew N Tsatsanis Christos |
author_sort |
Stathopoulos Efstathios N |
title |
The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress |
title_short |
The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress |
title_full |
The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress |
title_fullStr |
The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress |
title_full_unstemmed |
The impact of stress on tumor growth: peripheral CRF mediates tumor-promoting effects of stress |
title_sort |
impact of stress on tumor growth: peripheral crf mediates tumor-promoting effects of stress |
publisher |
BMC |
series |
Molecular Cancer |
issn |
1476-4598 |
publishDate |
2010-09-01 |
description |
<p>Abstract</p> <p>Introduction</p> <p>Stress has been shown to be a tumor promoting factor. Both clinical and laboratory studies have shown that chronic stress is associated with tumor growth in several types of cancer. Corticotropin Releasing Factor (CRF) is the major hypothalamic mediator of stress, but is also expressed in peripheral tissues. Earlier studies have shown that peripheral CRF affects breast cancer cell proliferation and motility. The aim of the present study was to assess the significance of peripheral CRF on tumor growth as a mediator of the response to stress in vivo.</p> <p>Methods</p> <p>For this purpose we used the 4T1 breast cancer cell line in cell culture and in vivo. Cells were treated with CRF in culture and gene specific arrays were performed to identify genes directly affected by CRF and involved in breast cancer cell growth. To assess the impact of peripheral CRF as a stress mediator in tumor growth, Balb/c mice were orthotopically injected with 4T1 cells in the mammary fat pad to induce breast tumors. Mice were subjected to repetitive immobilization stress as a model of chronic stress. To inhibit the action of CRF, the CRF antagonist antalarmin was injected intraperitoneally. Breast tissue samples were histologically analyzed and assessed for neoangiogenesis.</p> <p>Results</p> <p>Array analysis revealed among other genes that CRF induced the expression of SMAD2 and β-catenin, genes involved in breast cancer cell proliferation and cytoskeletal changes associated with metastasis. Cell transfection and luciferase assays confirmed the role of CRF in WNT- β-catenin signaling. CRF induced 4T1 cell proliferation and augmented the TGF-β action on proliferation confirming its impact on TGFβ/SMAD2 signaling. In addition, CRF promoted actin reorganization and cell migration, suggesting a direct tumor-promoting action. Chronic stress augmented tumor growth in 4T1 breast tumor bearing mice and peripheral administration of the CRF antagonist antalarmin suppressed this effect. Moreover, antalarmin suppressed neoangiogenesis in 4T1 tumors in vivo.</p> <p>Conclusion</p> <p>This is the first report demonstrating that peripheral CRF, at least in part, mediates the tumor-promoting effects of stress and implicates CRF in SMAD2 and β-catenin expression.</p> |
topic |
Corticotropin Releasing Hormone stress 4T1 breast cancer |
url |
http://www.molecular-cancer.com/content/9/1/261 |
work_keys_str_mv |
AT stathopoulosefstathiosn theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT ripolljorge theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT rassouliolga theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT dermitzakierini theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT androulidakiariadne theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT molberber theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT venihakimaria theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT arranzalicia theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT gomarizrosap theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT margiorisandrewn theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT tsatsanischristos theimpactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT stathopoulosefstathiosn impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT ripolljorge impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT rassouliolga impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT dermitzakierini impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT androulidakiariadne impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT molberber impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT venihakimaria impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT arranzalicia impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT gomarizrosap impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT margiorisandrewn impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress AT tsatsanischristos impactofstressontumorgrowthperipheralcrfmediatestumorpromotingeffectsofstress |
_version_ |
1725924943204450304 |