Literature DB >> 22456197

TACC2 is an androgen-responsive cell cycle regulator promoting androgen-mediated and castration-resistant growth of prostate cancer.

Ken-ichi Takayama1, Kuniko Horie-Inoue, Takashi Suzuki, Tomohiko Urano, Kazuhiro Ikeda, Tetsuya Fujimura, Satoru Takahashi, Yukio Homma, Yasuyoshi Ouchi, Satoshi Inoue.   

Abstract

Despite the existence of effective antiandrogen therapy for prostate cancer, the disease often progresses to castration-resistant states. Elucidation of the molecular mechanisms underlying the resistance for androgen deprivation in terms of the androgen receptor (AR)-regulated pathways is a requisite to manage castration-resistant prostate cancer (CRPC). Using a ChIP-cloning strategy, we identified functional AR binding sites (ARBS) in the genome of prostate cancer cells. We discovered that a centrosome- and microtubule-interacting gene, transforming acidic coiled-coil protein 2 (TACC2), is a novel androgen-regulated gene. We identified a functional AR-binding site (ARBS) including two canonical androgen response elements in the vicinity of TACC2 gene, in which activated hallmarks of histone modification were observed. Androgen-dependent TACC2 induction is regulated by AR, as confirmed by AR knockdown or its pharmacological inhibitor bicalutamide. Using long-term androgen-deprived cells as cellular models of CRPC, we demonstrated that TACC2 is highly expressed and contributes to hormone-refractory proliferation, as small interfering RNA-mediated knockdown of TACC2 reduced cell growth and cell cycle progression. By contrast, in TACC2-overexpressing cells, an acceleration of the cell cycle was observed. In vivo tumor formation study of prostate cancer in castrated immunocompromised mice revealed that TACC2 is a tumor-promoting factor. Notably, the clinical significance of TACC2 was demonstrated by a correlation between high TACC2 expression and poor survival rates. Taken together with the critical roles of TACC2 in the cell cycle and the biology of prostate cancer, we infer that the molecule is a potential therapeutic target in CRPC as well as hormone-sensitive prostate cancer.

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Year:  2012        PMID: 22456197      PMCID: PMC5417095          DOI: 10.1210/me.2011-1242

Source DB:  PubMed          Journal:  Mol Endocrinol        ISSN: 0888-8809


  44 in total

1.  Androgen receptor amplification is reflected in the transcriptional responses of Vertebral-Cancer of the Prostate cells.

Authors:  Harri Makkonen; Miia Kauhanen; Tiina Jääskeläinen; Jorma J Palvimo
Journal:  Mol Cell Endocrinol       Date:  2010-08-20       Impact factor: 4.102

2.  Castration resistance in human prostate cancer is conferred by a frequently occurring androgen receptor splice variant.

Authors:  Shihua Sun; Cynthia C T Sprenger; Robert L Vessella; Kathleen Haugk; Kathryn Soriano; Elahe A Mostaghel; Stephanie T Page; Ilsa M Coleman; Holly M Nguyen; Huiying Sun; Peter S Nelson; Stephen R Plymate
Journal:  J Clin Invest       Date:  2010-07-19       Impact factor: 14.808

3.  Molecular cloning, genomic structure and interactions of the putative breast tumor suppressor TACC2.

Authors:  Brenda Lauffart; Omkaram Gangisetty; Ivan H Still
Journal:  Genomics       Date:  2003-02       Impact factor: 5.736

4.  Transforming acidic coiled coil 1 promotes transformation and mammary tumorigenesis.

Authors:  Megan Cully; Jessica Shiu; Roland P Piekorz; William J Muller; Susan J Done; Tak W Mak
Journal:  Cancer Res       Date:  2005-11-15       Impact factor: 12.701

Review 5.  Androgen receptor involvement in the progression of prostate cancer.

Authors:  H Suzuki; T Ueda; T Ichikawa; H Ito
Journal:  Endocr Relat Cancer       Date:  2003-06       Impact factor: 5.678

6.  Androgen receptor regulates a distinct transcription program in androgen-independent prostate cancer.

Authors:  Qianben Wang; Wei Li; Yong Zhang; Xin Yuan; Kexin Xu; Jindan Yu; Zhong Chen; Rameen Beroukhim; Hongyun Wang; Mathieu Lupien; Tao Wu; Meredith M Regan; Clifford A Meyer; Jason S Carroll; Arjun Kumar Manrai; Olli A Jänne; Steven P Balk; Rohit Mehra; Bo Han; Arul M Chinnaiyan; Mark A Rubin; Lawrence True; Michelangelo Fiorentino; Christopher Fiore; Massimo Loda; Philip W Kantoff; X Shirley Liu; Myles Brown
Journal:  Cell       Date:  2009-07-23       Impact factor: 41.582

7.  Molecular determinants of resistance to antiandrogen therapy.

Authors:  Charlie D Chen; Derek S Welsbie; Chris Tran; Sung Hee Baek; Randy Chen; Robert Vessella; Michael G Rosenfeld; Charles L Sawyers
Journal:  Nat Med       Date:  2003-12-21       Impact factor: 53.440

8.  Amyloid precursor protein is a primary androgen target gene that promotes prostate cancer growth.

Authors:  Ken-ichi Takayama; Shuichi Tsutsumi; Takashi Suzuki; Kuniko Horie-Inoue; Kazuhiro Ikeda; Kiyofumi Kaneshiro; Tetsuya Fujimura; Jinpei Kumagai; Tomohiko Urano; Yoshiyuki Sakaki; Katsuhiko Shirahige; Hironobu Sasano; Satoru Takahashi; Tadaichi Kitamura; Yasuyoshi Ouchi; Hiroyuki Aburatani; Satoshi Inoue
Journal:  Cancer Res       Date:  2009-01-01       Impact factor: 12.701

9.  Early growth responsive gene 3 in human breast carcinoma: a regulator of estrogen-meditated invasion and a potent prognostic factor.

Authors:  Takashi Suzuki; Akio Inoue; Yasuhiro Miki; Takuya Moriya; Jun-ichi Akahira; Takanori Ishida; Hisashi Hirakawa; Yuri Yamaguchi; Shin-ichi Hayashi; Hironobu Sasano
Journal:  Endocr Relat Cancer       Date:  2007-06       Impact factor: 5.678

10.  Ki-67 and outcome in clinically localised prostate cancer: analysis of conservatively treated prostate cancer patients from the Trans-Atlantic Prostate Group study.

Authors:  D M Berney; A Gopalan; S Kudahetti; G Fisher; L Ambroisine; C S Foster; V Reuter; J Eastham; H Moller; M W Kattan; W Gerald; C Cooper; P Scardino; J Cuzick
Journal:  Br J Cancer       Date:  2009-03-24       Impact factor: 7.640

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  21 in total

1.  Chromosome 10, frequently lost in human melanoma, encodes multiple tumor-suppressive functions.

Authors:  Lawrence N Kwong; Lynda Chin
Journal:  Cancer Res       Date:  2014-01-22       Impact factor: 12.701

2.  Integrative analysis of FOXP1 function reveals a tumor-suppressive effect in prostate cancer.

Authors:  Ken-Ichi Takayama; Takashi Suzuki; Shuichi Tsutsumi; Tetsuya Fujimura; Satoru Takahashi; Yukio Homma; Tomohiko Urano; Hiroyuki Aburatani; Satoshi Inoue
Journal:  Mol Endocrinol       Date:  2014-12

3.  Characterization of DSM-IV Opioid Dependence Among Individuals of European Ancestry.

Authors:  Leslie A Brick; Lauren Micalizzi; Valerie S Knopik; Rohan H C Palmer
Journal:  J Stud Alcohol Drugs       Date:  2019-05       Impact factor: 2.582

4.  Angiogenic cytokines are antibody targets during graft-versus-leukemia reactions.

Authors:  Matthias Piesche; Vincent T Ho; Haesook Kim; Yukoh Nakazaki; Michael Nehil; Nasser K Yaghi; Dmitriy Kolodin; Jeremy Weiser; Peter Altevogt; Helena Kiefel; Edwin P Alyea; Joseph H Antin; Corey Cutler; John Koreth; Christine Canning; Jerome Ritz; Robert J Soiffer; Glenn Dranoff
Journal:  Clin Cancer Res       Date:  2014-12-23       Impact factor: 12.531

5.  Androgen-induced Long Noncoding RNA (lncRNA) SOCS2-AS1 Promotes Cell Growth and Inhibits Apoptosis in Prostate Cancer Cells.

Authors:  Aya Misawa; Ken-Ichi Takayama; Tomohiko Urano; Satoshi Inoue
Journal:  J Biol Chem       Date:  2016-06-24       Impact factor: 5.157

6.  Androgen-responsive long noncoding RNA CTBP1-AS promotes prostate cancer.

Authors:  Ken-Ichi Takayama; Kuniko Horie-Inoue; Shintaro Katayama; Takashi Suzuki; Shuichi Tsutsumi; Kazuhiro Ikeda; Tomohiko Urano; Tetsuya Fujimura; Kiyoshi Takagi; Satoru Takahashi; Yukio Homma; Yasuyoshi Ouchi; Hiroyuki Aburatani; Yoshihide Hayashizaki; Satoshi Inoue
Journal:  EMBO J       Date:  2013-05-03       Impact factor: 11.598

7.  Epigenetic regulation of lncRNA connects ubiquitin-proteasome system with infection-inflammation in preterm births and preterm premature rupture of membranes.

Authors:  Xiucui Luo; Jing Pan; Leilei Wang; Peirong Wang; Meijiao Zhang; Meilin Liu; Ziqing Dong; Qian Meng; Xuguang Tao; Xinliang Zhao; Julia Zhong; Weina Ju; Yang Gu; Edmund C Jenkins; W Ted Brown; Qingxi Shi; Nanbert Zhong
Journal:  BMC Pregnancy Childbirth       Date:  2015-02-15       Impact factor: 3.007

8.  Glucocorticoid-induced reversal of interleukin-1β-stimulated inflammatory gene expression in human oviductal cells.

Authors:  Stéphanie Backman; Alexandra Kollara; Robin Haw; Lincoln Stein; Theodore J Brown
Journal:  PLoS One       Date:  2014-05-21       Impact factor: 3.240

9.  Network analysis of an in vitro model of androgen-resistance in prostate cancer.

Authors:  Sujitra Detchokul; Aparna Elangovan; Edmund J Crampin; Melissa J Davis; Albert G Frauman
Journal:  BMC Cancer       Date:  2015-11-10       Impact factor: 4.430

10.  Differentially Expressed miRNAs in Hepatocellular Carcinoma Target Genes in the Genetic Information Processing and Metabolism Pathways.

Authors:  Thomas Thurnherr; Way-Champ Mah; Zhengdeng Lei; Yu Jin; Steven G Rozen; Caroline G Lee
Journal:  Sci Rep       Date:  2016-01-28       Impact factor: 4.379

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