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Published in: Immunologic Research 1/2016

01-02-2016 | Original Article

Cripto-1 modulates macrophage cytokine secretion and phagocytic activity via NF-κB signaling

Authors: Dong-mei Zhang, Yong-Li Bao, Chun-Lei Yu, Yi-meng Wang, Zhen-Bo Song

Published in: Immunologic Research | Issue 1/2016

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Abstract

Cripto-1 is an oncogenic protein belonging to the epidermal growth factor–Cripto-1/FRL-1/Cryptic family. It has important roles in tumor formation and metastasis, but its effects on the immune system are unclear. In the present study, we investigated the effects of Cripto-1 overexpression on macrophage activities and examined the underlying mechanisms. A cell line stably overexpressing Cripto-1 was developed. The culture supernatant from this cell line was collected and used to condition macrophages (RAW264.7, THP-1, and primary mouse macrophages) for various times. Exposure to this supernatant significantly increased the mRNA and protein expression levels of the anti-inflammatory cytokine interleukin (IL)-10 and of three pro-inflammatory cytokines (tumor necrosis factor-α, IL-6, and IL-1β), but did not affect the expression of transforming growth factor-β, another anti-inflammatory cytokine. Exposure to this supernatant also enhanced macrophage phagocytosis of chicken erythrocytes and yeast cells. Similar effects were observed in macrophages stimulated with purified Cripto-1 protein. Mechanistic experiments revealed that Cripto-1 activated nuclear factor (NF)-κB signaling by inducing IκB kinase phosphorylation and p65 nuclear translocation. Pretreatment with ammonium pyrrolidine dithiocarbamate, a specific NF-κB inhibitor, inhibited Cripto-1-induced cytokine secretion and phagocytosis of macrophages. Taken together, our present findings suggest that Cripto-1 enhances macrophage phagocytic activity and upregulates the production of anti- and pro-inflammatory cytokines via the NF-κB signaling pathway.
Literature
1.
go back to reference Strizzi L, et al. Emerging roles of nodal and Cripto-1: from embryogenesis to breast cancer progression. Breast Dis. 2008;29:91–103.PubMedCentralPubMed Strizzi L, et al. Emerging roles of nodal and Cripto-1: from embryogenesis to breast cancer progression. Breast Dis. 2008;29:91–103.PubMedCentralPubMed
2.
go back to reference Salomon DS, Bianco C, De Santis M. Cripto: a novel epidermal growth factor (EGF)-related peptide in mammary gland development and neoplasia. BioEssays. 1999;21(1):61–70.CrossRefPubMed Salomon DS, Bianco C, De Santis M. Cripto: a novel epidermal growth factor (EGF)-related peptide in mammary gland development and neoplasia. BioEssays. 1999;21(1):61–70.CrossRefPubMed
3.
go back to reference D’Andrea D, et al. Cripto promotes A–P axis specification independently of its stimulatory effect on Nodal autoinduction. J Cell Biol. 2008;180(3):597–605.PubMedCentralCrossRefPubMed D’Andrea D, et al. Cripto promotes A–P axis specification independently of its stimulatory effect on Nodal autoinduction. J Cell Biol. 2008;180(3):597–605.PubMedCentralCrossRefPubMed
4.
go back to reference Bianco C, et al. Regulation of Cripto-1 signaling and biological activity by caveolin-1 in mammary epithelial cells. Am J Pathol. 2008;172(2):345–57.PubMedCentralCrossRefPubMed Bianco C, et al. Regulation of Cripto-1 signaling and biological activity by caveolin-1 in mammary epithelial cells. Am J Pathol. 2008;172(2):345–57.PubMedCentralCrossRefPubMed
6.
go back to reference Yeo C, Whitman M. Nodal signals to Smads through Cripto-dependent and Cripto-independent mechanisms. Mol Cell. 2001;7(5):949–57.CrossRefPubMed Yeo C, Whitman M. Nodal signals to Smads through Cripto-dependent and Cripto-independent mechanisms. Mol Cell. 2001;7(5):949–57.CrossRefPubMed
7.
8.
go back to reference De Santis ML, et al. Cripto-1 inhibits beta-casein expression in mammary epithelial cells through a p21ras-and phosphatidylinositol 3′-kinase-dependent pathway. Cell Growth Differ. 1997;8(12):1257–66.PubMed De Santis ML, et al. Cripto-1 inhibits beta-casein expression in mammary epithelial cells through a p21ras-and phosphatidylinositol 3′-kinase-dependent pathway. Cell Growth Differ. 1997;8(12):1257–66.PubMed
9.
go back to reference Dunn GP, et al. Cancer immunoediting: from immunosurveillance to tumor escape. Nat Immunol. 2002;3(11):991–8.CrossRefPubMed Dunn GP, et al. Cancer immunoediting: from immunosurveillance to tumor escape. Nat Immunol. 2002;3(11):991–8.CrossRefPubMed
10.
go back to reference Dunn GP, Old LJ, Schreiber RD. The three Es of cancer immunoediting. Annu Rev Immunol. 2004;22:329–60.CrossRefPubMed Dunn GP, Old LJ, Schreiber RD. The three Es of cancer immunoediting. Annu Rev Immunol. 2004;22:329–60.CrossRefPubMed
11.
go back to reference Johnston FM, et al. Circulating mesothelin protein and cellular antimesothelin immunity in patients with pancreatic cancer. Clin Cancer Res. 2009;15(21):6511–8.PubMedCentralCrossRefPubMed Johnston FM, et al. Circulating mesothelin protein and cellular antimesothelin immunity in patients with pancreatic cancer. Clin Cancer Res. 2009;15(21):6511–8.PubMedCentralCrossRefPubMed
12.
go back to reference Siveen KS, Kuttan G. Role of macrophages in tumour progression. Immunol Lett. 2009;123(2):97–102.CrossRefPubMed Siveen KS, Kuttan G. Role of macrophages in tumour progression. Immunol Lett. 2009;123(2):97–102.CrossRefPubMed
13.
go back to reference Hagemann T, et al. Macrophages induce invasiveness of epithelial cancer cells via NF-kappa B and JNK. J Immunol. 2005;175(2):1197–205.CrossRefPubMed Hagemann T, et al. Macrophages induce invasiveness of epithelial cancer cells via NF-kappa B and JNK. J Immunol. 2005;175(2):1197–205.CrossRefPubMed
14.
go back to reference Deng L, et al. A novel mouse model of inflammatory bowel disease links mammalian target of rapamycin-dependent hyperproliferation of colonic epithelium to inflammation-associated tumorigenesis. Am J Pathol. 2010;176(2):952–67.PubMedCentralCrossRefPubMed Deng L, et al. A novel mouse model of inflammatory bowel disease links mammalian target of rapamycin-dependent hyperproliferation of colonic epithelium to inflammation-associated tumorigenesis. Am J Pathol. 2010;176(2):952–67.PubMedCentralCrossRefPubMed
15.
go back to reference Lin EY, et al. Vascular endothelial growth factor restores delayed tumor progression in tumors depleted of macrophages. Mol Oncol. 2007;1(3):288–302.PubMedCentralCrossRefPubMed Lin EY, et al. Vascular endothelial growth factor restores delayed tumor progression in tumors depleted of macrophages. Mol Oncol. 2007;1(3):288–302.PubMedCentralCrossRefPubMed
16.
go back to reference Torroella-Kouri M, et al. Identification of a subpopulation of macrophages in mammary tumor-bearing mice that are neither M1 nor M2 and are less differentiated. Cancer Res. 2009;69(11):4800–9.CrossRefPubMed Torroella-Kouri M, et al. Identification of a subpopulation of macrophages in mammary tumor-bearing mice that are neither M1 nor M2 and are less differentiated. Cancer Res. 2009;69(11):4800–9.CrossRefPubMed
18.
19.
go back to reference Minchiotti G, et al. Membrane-anchorage of Cripto protein by glycosylphosphatidylinositol and its distribution during early mouse development. Mech Dev. 2000;90(2):133–42.CrossRefPubMed Minchiotti G, et al. Membrane-anchorage of Cripto protein by glycosylphosphatidylinositol and its distribution during early mouse development. Mech Dev. 2000;90(2):133–42.CrossRefPubMed
21.
go back to reference Gocheva V, et al. IL-4 induces cathepsin protease activity in tumor-associated macrophages to promote cancer growth and invasion. Genes Dev. 2010;24(3):241–55.PubMedCentralCrossRefPubMed Gocheva V, et al. IL-4 induces cathepsin protease activity in tumor-associated macrophages to promote cancer growth and invasion. Genes Dev. 2010;24(3):241–55.PubMedCentralCrossRefPubMed
22.
go back to reference Galli SJ, Borregaard N, Wynn TA. Phenotypic and functional plasticity of cells of innate immunity: macrophages, mast cells and neutrophils. Nat Immunol. 2011;12(11):1035–44.PubMedCentralCrossRefPubMed Galli SJ, Borregaard N, Wynn TA. Phenotypic and functional plasticity of cells of innate immunity: macrophages, mast cells and neutrophils. Nat Immunol. 2011;12(11):1035–44.PubMedCentralCrossRefPubMed
23.
go back to reference Schommer NN, et al. Staphylococcus epidermidis uses distinct mechanisms of biofilm formation to interfere with phagocytosis and activation of mouse macrophage-like cells 774A.1. Infect Immun. 2011;79(6):2267–76.PubMedCentralCrossRefPubMed Schommer NN, et al. Staphylococcus epidermidis uses distinct mechanisms of biofilm formation to interfere with phagocytosis and activation of mouse macrophage-like cells 774A.1. Infect Immun. 2011;79(6):2267–76.PubMedCentralCrossRefPubMed
Metadata
Title
Cripto-1 modulates macrophage cytokine secretion and phagocytic activity via NF-κB signaling
Authors
Dong-mei Zhang
Yong-Li Bao
Chun-Lei Yu
Yi-meng Wang
Zhen-Bo Song
Publication date
01-02-2016
Publisher
Springer US
Published in
Immunologic Research / Issue 1/2016
Print ISSN: 0257-277X
Electronic ISSN: 1559-0755
DOI
https://doi.org/10.1007/s12026-015-8724-3

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