Literature DB >> 20237834

The β2-adrenergic receptor and Her2 comprise a positive feedback loop in human breast cancer cells.

Ming Shi1, Dan Liu, Huijun Duan, Lu Qian, Lina Wang, Lijia Niu, Huipeng Zhang, Zheng Yong, Zehui Gong, Lun Song, Ming Yu, Meiru Hu, Qing Xia, Beifen Shen, Ning Guo.   

Abstract

In this study, β2-AR level was found to be up-regulated in MCF-7 cells overexpressing Her2 (MCF-7/Her2). Correlation of β2-AR level with Her2 status was demonstrated in breast cancer tissue samples. Constitutive phosphorylation of ERK, mRNA expression up-regulation of catecholamine-synthesis enzymes, and increased epinephrine release were detected in MCF-7/Her2 cells. β2-AR expression induced by epinephrine and involvement of ERK signaling were validated. The data indicate that Her2 overexpression and excessive phosphorylation of ERK cause epinephrine autocrine release from breast cancer cells, resulting in up-regulation of β2-AR expression. The data also showed that catecholamine prominently stimulated Her2 mRNA expression and promoter activity. The activation and nuclear translocation of STAT3 triggered by isoproterenol were observed. Enhanced binding activities of STAT3 to the Her2 promoter after isoproterenol stimulation were verified. Using STAT3 shRNA and dominant negative STAT3 mutant, the role of STAT3 in isoproterenol-induced Her2 expression was further confirmed. The data support a model where β2-AR and Her2 comprise a positive feedback loop in human breast cancer cells.

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Year:  2010        PMID: 20237834     DOI: 10.1007/s10549-010-0822-2

Source DB:  PubMed          Journal:  Breast Cancer Res Treat        ISSN: 0167-6806            Impact factor:   4.872


  44 in total

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Review 2.  Sympathetic nervous system regulation of the tumour microenvironment.

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3.  Beta-adrenergic blocking drugs in breast cancer: a perspective review.

Authors:  Thomas I Barron; Linda Sharp; Kala Visvanathan
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4.  Clinical significance of β2-adrenergic receptor expression in patients with surgically resected gastric adenocarcinoma.

Authors:  Kengo Takahashi; Kyoichi Kaira; Akira Shimizu; Taisuke Sato; Norifumi Takahashi; Hiroomi Ogawa; Daisuke Yoshinari; Takehiko Yokobori; Takayuki Asao; Izumi Takeyoshi; Tetsunari Oyama
Journal:  Tumour Biol       Date:  2016-08-03

Review 5.  β-Adrenergic modulation of cancer cell proliferation: available evidence and clinical perspectives.

Authors:  Marisa Coelho; Cátia Soares-Silva; Daniela Brandão; Franca Marino; Marco Cosentino; Laura Ribeiro
Journal:  J Cancer Res Clin Oncol       Date:  2016-10-05       Impact factor: 4.553

Review 6.  Molecular pathways: beta-adrenergic signaling in cancer.

Authors:  Steven W Cole; Anil K Sood
Journal:  Clin Cancer Res       Date:  2011-12-20       Impact factor: 12.531

Review 7.  Schwann cells: a new player in the tumor microenvironment.

Authors:  Yuri L Bunimovich; Anton A Keskinov; Galina V Shurin; Michael R Shurin
Journal:  Cancer Immunol Immunother       Date:  2016-11-24       Impact factor: 6.968

8.  G3BP2 is involved in isoproterenol-induced cardiac hypertrophy through activating the NF-κB signaling pathway.

Authors:  Hui-Qi Hong; Jing Lu; Xiu-Li Fang; Yu-Hong Zhang; Yi Cai; Jing Yuan; Pei-Qing Liu; Jian-Tao Ye
Journal:  Acta Pharmacol Sin       Date:  2017-08-17       Impact factor: 6.150

9.  Isoprenaline induces epithelial-mesenchymal transition in gastric cancer cells.

Authors:  Yan-Jie Lu; Zhi-Jun Geng; Xiao-Yan Sun; Yu-Hong Li; Xiao-Bing Fu; Xiang-Yang Zhao; Bo Wei
Journal:  Mol Cell Biochem       Date:  2015-08-08       Impact factor: 3.396

Review 10.  Nervous system regulation of the cancer genome.

Authors:  Steven W Cole
Journal:  Brain Behav Immun       Date:  2012-12-01       Impact factor: 7.217

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