c-MYC drives histone demethylase PHF8 during neuroendocrine differentiation and in castration-resistant prostate cancer

被引:45
作者
Maina, Peterson Kariuki [1 ]
Shao, Peng [1 ]
Liu, Qi [1 ]
Fazli, Ladan [2 ]
Tyler, Scott [1 ]
Nasir, Moman [3 ]
Dong, Xuesen [2 ]
Qi, Hank Heng [1 ]
机构
[1] Univ Iowa, Carver Coll Med, Dept Anat & Cell Biol, Iowa City, IA 52246 USA
[2] Univ British Columbia, Dept Urol Sci, Vancouver Prostate Ctr, Vancouver, BC V6H 3Z6, Canada
[3] Univ Iowa, Coll Liberal Arts & Sci, Dept Hlth & Human Physiol, Iowa City, IA 52242 USA
关键词
prostate cancer; NED; CRPC; PHF8; c-MYC; ANDROGEN-RECEPTOR; GENE-EXPRESSION; CLIP-SEQ; INTERLEUKIN-6; TRANSCRIPTION; ACTIVATION; GROWTH; CELLS; IDENTIFICATION; REPRESSION;
D O I
10.18632/oncotarget.12310
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Epigenetic factors play critical roles in prostate cancer (PCa) development. However, how they contribute to neuroendocrine differentiation (NED) and castration-resistant PCa (CRPC) is not fully understood. Using bioinformatics and biochemical approaches to analyze cell-based models of NED and CRPC, we found a cluster of epigenetic factors whose expression is downregulated during NED and upregulated in CRPC (i.e. follow a Down-Up pattern). Two histone demethylases within this cluster, PHF8 and KDM3A, are post-transcriptionally regulated by c-MYC through miR-22, which targets both PHF8 and KDM3A. We also found that the c-MYC/miR22/PHF8 axis is downstream of androgen receptor (AR) signaling in CRPC cells. The co-expression of PHF8 with AR in clinical CRPC samples, normal mouse prostate, and adenocarcinomas of the prostate during PCa progression in a transgenic (TRAMP) mouse model supports the connection between PHF8 and AR. Knockdown of PHF8 impedes cell cycle progression in CRPC cells and has more profound effects on their growth than on the parental LNCaP cell line. Furthermore, PHF8 knockdown sensitizes LNCaP-Abl cells to the AR antagonist enzalutamide. Our data reveal novel mechanisms that underlie the regulation of PHF8 and KDM3A during NED and in CRPC, and support the candidacy of PHF8 as a therapeutic target in CRPC.
引用
收藏
页码:75585 / 75602
页数:18
相关论文
共 69 条
  • [1] Predicting effective microRNA target sites in mammalian mRNAs
    Agarwal, Vikram
    Bell, George W.
    Nam, Jin-Wu
    Bartel, David P.
    [J]. ELIFE, 2015, 4
  • [2] Comparative effects of DHEA vs. testosterone, dihydrotestosterone, and estradiol on proliferation and gene expression in human LNCaP prostate cancer cells
    Arnold, JT
    Le, H
    McFann, KK
    Blackman, MR
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2005, 288 (03): : E573 - E584
  • [3] The SRA protein UHRF1 promotes epigenetic crosstalks and is involved in prostate cancer progression
    Babbio, F.
    Pistore, C.
    Curti, L.
    Castiglioni, I.
    Kunderfranco, P.
    Brino, L.
    Oudet, P.
    Seiler, R.
    Thalman, G. N.
    Roggero, E.
    Sarti, M.
    Pinton, S.
    Mello-Grand, M.
    Chiorino, G.
    Catapano, C. V.
    Carbone, G. M.
    Bonapace, I. M.
    [J]. ONCOGENE, 2012, 31 (46) : 4878 - 4887
  • [4] Molecular Characterization of Neuroendocrine Prostate Cancer and Identification of New Drug Targets
    Beltran, Himisha
    Rickman, David S.
    Park, Kyung
    Chae, Sung Suk
    Sboner, Andrea
    MacDonald, Theresa Y.
    Wang, Yuwei
    Sheikh, Karen L.
    Terry, Stephane
    Tagawa, Scott T.
    Dhir, Rajiv
    Nelson, Joel B.
    de la Taille, Alexandre
    Allory, Yves
    Gerstein, Mark B.
    Perner, Sven
    Pienta, Kenneth J.
    Chinnaiyan, Arul M.
    Wang, Yuzhuo
    Collins, Colin C.
    Gleave, Martin E.
    Demichelis, Francesca
    Nanus, David M.
    Rubin, Mark A.
    [J]. CANCER DISCOVERY, 2011, 1 (06) : 487 - 495
  • [5] Systematic knockdown of epigenetic enzymes identifies a novel histone demethylase PHF8 overexpressed in prostate cancer with an impact on cell proliferation, migration and invasion
    Bjorkman, M.
    Ostling, P.
    Harma, V.
    Virtanen, J.
    Mpindi, J-P
    Rantala, J.
    Mirtti, T.
    Vesterinen, T.
    Lundin, M.
    Sankila, A.
    Rannikko, A.
    Kaivanto, E.
    Kohonen, P.
    Kallioniemi, O.
    Nees, M.
    [J]. ONCOGENE, 2012, 31 (29) : 3444 - 3456
  • [6] Androgen Receptor Gene Expression in Prostate Cancer Is Directly Suppressed by the Androgen Receptor Through Recruitment of Lysine-Specific Demethylase 1
    Cai, Changmeng
    He, Housheng Hansen
    Chen, Sen
    Coleman, Ilsa
    Wang, Hongyun
    Fang, Zi
    Chen, Shaoyong
    Nelson, Peter S.
    Liu, X. Shirley
    Brown, Myles
    Balk, Steven P.
    [J]. CANCER CELL, 2011, 20 (04) : 457 - 471
  • [7] Autophagy Pathway Is Required for IL-6 Induced Neuroendocrine Differentiation and Chemoresistance of Prostate Cancer LNCaP Cells
    Chang, Pei-Ching
    Wang, Tao-Yeuan
    Chang, Yi-Ting
    Chu, Cheng-Ying
    Lee, Chin-Ling
    Hsu, Hung-Wei
    Zhou, Tyng-An
    Wu, Zhaoju
    Kim, Randie H.
    Desai, Sonal J.
    Liu, Shangqin
    Kung, Hsing-Jien
    [J]. PLOS ONE, 2014, 9 (02):
  • [8] Widespread microRNA repression by Myc contributes to tumorigenesis
    Chang, Tsung-Cheng
    Yu, Duonan
    Lee, Yun-Sil
    Wentzel, Erik A.
    Arking, Dan E.
    West, Kristin M.
    Dang, Chi V.
    Thomas-Tikhonenko, Andrei
    Mendell, Joshua T.
    [J]. NATURE GENETICS, 2008, 40 (01) : 43 - 50
  • [9] Real-time quantification of microRNAs by stem-loop RT-PCR
    Chen, CF
    Ridzon, DA
    Broomer, AJ
    Zhou, ZH
    Lee, DH
    Nguyen, JT
    Barbisin, M
    Xu, NL
    Mahuvakar, VR
    Andersen, MR
    Lao, KQ
    Livak, KJ
    Guegler, KJ
    [J]. NUCLEIC ACIDS RESEARCH, 2005, 33 (20) : e179.1 - e179.9
  • [10] Switch from antagonist to agonist of the androgen receptor blocker bicalutamide is associated with prostate tumour progression in a new model system
    Culig Z.
    Hoffmann J.
    Erdel M.
    Eder I.E.
    Hobisch A.
    Hittmair A.
    Bartsch G.
    Utermann G.
    Schneider M.R.
    Parczyk K.
    Klocker H.
    [J]. British Journal of Cancer, 1999, 81 (2) : 242 - 251