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PMID: 12183434 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Proinflammatory cytokines block growth of breast cancer cells by impairing signals from a growth factor receptor.

Cancer research ·Vol. 62 ·No. 16 ·2002-08-15 ·Pages 4746-56

Shen WH, Zhou JH, Broussard SR, Freund GG, Dantzer R, Kelley KW

Abstract

Neutralization of endogenous growth factors and administration of exogenous bioactive cytokines are two distinct biological antitumor strategies that show promise for treatment of cancer patients. In this report, we provide evidence to link both strategies as an integrative approach to cancer therapy. We tested the hypothesis that proinflammatory cytokines block growth of transformed cells by inhibiting key intracellular signaling events after activation of the insulin-like growth factor-I (IGF-I) tyrosine kinase receptor. IGF-I stimulates DNA synthesis in MCF-7 cells by 15-fold. This increase is significantly inhibited by TNF (tumor necrosis factor) -alpha at 0.1 ng/ml and is reduced by 80% at 100 ng/ml. Similarly, both IL (interleukin) -1beta and IL-6 significantly reduce the ability of IGF-I to promote DNA synthesis. Flow cytometry confirmed that all three of the cytokines inhibit IGF-I-induced DNA synthesis by preventing cells from entering the S phase of the cell cycle, leading to G(0)/G(1) arrest. Although none of the cytokines alone are cytotoxic to transformed epithelial cells in the absence of serum, TNF-alpha significantly inhibits the antiapoptotic property of IGF-I in protecting MCF-7 cells from DNA fragmentation. TNF-alpha and IL-1beta act by inhibiting the IGF-I receptor from tyrosine phosphorylating insulin receptor substrate-1 without affecting tyrosine kinase activity of the IGF-IR itself. These data support the novel idea that the major inhibitory properties of proinflammatory cytokines on growth of breast cancer cells are manifested prominently in the presence of growth factors. These data also highlight growth factor receptor adaptor molecules, such as insulin receptor substrate-1, rather than the receptors themselves as targets for antitumor therapeutic strategies.

MeSH Terms
Adenocarcinoma/drug therapy,genetics,metabolism,pathology Apoptosis/drug effects,physiology Breast Neoplasms/drug therapy,genetics,metabolism,pathology Cell Cycle/drug effects,physiology Cell Division/drug effects,physiology DNA, Neoplasm/biosynthesis Humans Insulin Receptor Substrate Proteins Insulin-Like Growth Factor I/antagonists & inhibitors,physiology Interleukin-1/pharmacology Interleukin-6/pharmacology Phosphoproteins/metabolism Phosphorylation/drug effects Receptor, IGF Type 1/antagonists & inhibitors,metabolism Signal Transduction/drug effects Tumor Cells, Cultured Tumor Necrosis Factor-alpha/pharmacology Tyrosine/metabolism
Chemicals
DNA, Neoplasm IRS1 protein, human Insulin Receptor Substrate Proteins Interleukin-1 Interleukin-6 Phosphoproteins Tumor Necrosis Factor-alpha Tyrosine Insulin-Like Growth Factor I Receptor, IGF Type 1
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Shen Wen-Hong
Laboratory of Immunophysiology, Department of Animal Sciences, University of Illinois, Urbana, Illinois 61801, USA.
Zhou Jian-Hua
Broussard Suzanne R
Freund Gregory G
Dantzer Robert
Kelley Keith W
Article Info
Journal
Cancer research
Abbr.
Cancer Res
ISSN
0008-5472
Published
2002-08-15
Pages
4746-56
Language
English
Region
United States
NLM ID
2984705R
Subset
IM
Grants
NIAID NIH HHS · AI50442 · United States
NIMH NIH HHS · MH-51569 · United States
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