Literature DB >> 23027620

CXCL1/GROα increases cell migration and invasion of prostate cancer by decreasing fibulin-1 expression through NF-κB/HDAC1 epigenetic regulation.

Po-Lin Kuo1, Kun-Hung Shen, Shun-Hsing Hung, Ya-Ling Hsu.   

Abstract

Inflammatory tumor microenvironments play pivotal roles in the development of cancer. Inflammatory cytokines such as CXCL1/GROα exert cancer-promoting activities by increasing tumor angiogenesis. However, whether CXCL1/GROα also plays a role in the progression of prostate cancer, particularly in highly invasive castration-resistant prostate cancer (CRPC), has not been investigated. We explored whether CXCL1/GROα enhances cell migration and invasion in PC-3 and DU145 CRPC. Induction of PC-3 and DU145 cancer progression by CXCL1/GROα is associated with increased AKT activation and IκB kinase α (IKKα) phosphorylation, resulting in nuclear factor-kappaB (NF-κB) activation. Activated NF-κB interacts with histone deacetylase 1 (HDAC1) to form a gene-silencing complex, which represses the expression of fibulin-1D by decreasing the acetylation of histone H3 and H4 on the NF-κB-binding site of the fibulin-1D promoter. Blockade of AKT2 by small hairpin RNA (shRNA) decreases IKKα phosphorylation, NF-κB nuclear translocation and cell migration, indicating that AKT is required in CXCL1/GROα-mediated NF-κB activation and cell migration. In addition, NF-κB and HDAC1 shRNA decrease the effect of CXCL1/GROα on fibulin-1D downregulation, migration and invasion, suggesting that the NF-κB/HDAC1 complex is also involved in CXCL1/GROα-mediated cancer progression. Our findings provide the first evidence that CXCL1/GROα decreases fibulin-1D expression in prostate cancer cells and also reveals novel insights into the mechanism by which CXCL1/GROα regulates NF-κB activation through the AKT pathway. Our results also clearly establish that co-operation of NF-κB and HDAC1 regulates fibulin-1D expression by epigenetic modification. Our study suggests that inhibition of CXCL1/GROα-mediated AKT/NF-κB signaling may be an attractive therapeutic target for CRPC.

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Year:  2012        PMID: 23027620     DOI: 10.1093/carcin/bgs299

Source DB:  PubMed          Journal:  Carcinogenesis        ISSN: 0143-3334            Impact factor:   4.944


  51 in total

1.  Identification of the NAC1-regulated genes in ovarian cancer.

Authors:  Min Gao; Ren-Chin Wu; Alice L Herlinger; Kailee Yap; Jung-Won Kim; Tian-Li Wang; Ie-Ming Shih
Journal:  Am J Pathol       Date:  2013-11-06       Impact factor: 4.307

2.  CXCL1 Derived from Mammary Fibroblasts Promotes Progression of Mammary Lesions to Invasive Carcinoma through CXCR2 Dependent Mechanisms.

Authors:  Shira Bernard; Megan Myers; Wei Bin Fang; Brandon Zinda; Curtis Smart; Diana Lambert; An Zou; Fang Fan; Nikki Cheng
Journal:  J Mammary Gland Biol Neoplasia       Date:  2018-08-09       Impact factor: 2.673

Review 3.  The role of epithelial plasticity in prostate cancer dissemination and treatment resistance.

Authors:  Rhonda L Bitting; Daneen Schaeffer; Jason A Somarelli; Mariano A Garcia-Blanco; Andrew J Armstrong
Journal:  Cancer Metastasis Rev       Date:  2014-09       Impact factor: 9.264

4.  JAK/STAT inhibition in macrophages promotes therapeutic resistance by inducing expression of protumorigenic factors.

Authors:  Emily A Irey; Chelsea M Lassiter; Nicholas J Brady; Pavlina Chuntova; Ying Wang; Todd P Knutson; Christine Henzler; Thomas S Chaffee; Rachel I Vogel; Andrew C Nelson; Michael A Farrar; Kathryn L Schwertfeger
Journal:  Proc Natl Acad Sci U S A       Date:  2019-05-30       Impact factor: 11.205

5.  Inflammatory Breast Cancer Promotes Development of M2 Tumor-Associated Macrophages and Cancer Mesenchymal Cells through a Complex Chemokine Network.

Authors:  Amanda Valeta-Magara; Abhilash Gadi; Viviana Volta; Beth Walters; Rezina Arju; Shah Giashuddin; Hua Zhong; Robert J Schneider
Journal:  Cancer Res       Date:  2019-05-01       Impact factor: 12.701

6.  CXCL1 expression is correlated with Snail expression and affects the prognosis of patients with gastric cancer.

Authors:  Zhen Xiang; DA-Ping Jiang; Guang-Gai Xia; Zhe-Wei Wei; Wei Chen; Yulong He; Chang-Hua Zhang
Journal:  Oncol Lett       Date:  2015-08-14       Impact factor: 2.967

7.  Fibulin-3 suppresses Wnt/β-catenin signaling and lung cancer invasion.

Authors:  Xiaojun Chen; Jie Meng; Wen Yue; Jian Yu; Jie Yang; Zhi Yao; Lin Zhang
Journal:  Carcinogenesis       Date:  2014-01-30       Impact factor: 4.944

8.  Fusobacterium nucleatum host-cell binding and invasion induces IL-8 and CXCL1 secretion that drives colorectal cancer cell migration.

Authors:  Michael A Casasanta; Christopher C Yoo; Barath Udayasuryan; Blake E Sanders; Ariana Umaña; Yao Zhang; Huaiyao Peng; Alison J Duncan; Yueying Wang; Liwu Li; Scott S Verbridge; Daniel J Slade
Journal:  Sci Signal       Date:  2020-07-21       Impact factor: 8.192

9.  The Multifaceted Roles Neutrophils Play in the Tumor Microenvironment.

Authors:  Ronit Vogt Sionov; Zvi G Fridlender; Zvi Granot
Journal:  Cancer Microenviron       Date:  2014-06-04

10.  Expression array analysis of the hepatocyte growth factor invasive program.

Authors:  Fabiola Cecchi; Chih-Jian Lih; Young H Lee; William Walsh; Daniel C Rabe; Paul M Williams; Donald P Bottaro
Journal:  Clin Exp Metastasis       Date:  2015-08-01       Impact factor: 5.150

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