Multivalent epigenetic marks confer microenvironment-responsive epigenetic plasticity to ovarian cancer cells

被引:38
|
作者
Bapat, Sharmila A. [5 ]
Jin, Victor [6 ]
Berry, Nicholas [1 ,5 ]
Balch, Curt [1 ,2 ,4 ]
Sharma, Neeti [5 ]
Kurrey, Nawneet [5 ]
Zhang, Shu [1 ]
Fang, Fang [1 ]
Lan, Xun [6 ]
Li, Meng [1 ]
Kennedy, Brian [6 ]
Bigsby, Robert M. [3 ,4 ]
Huang, Tim H. M. [7 ]
Nephew, Kenneth P. [1 ,2 ,3 ,4 ]
机构
[1] Indiana Univ, Sch Med, Bloomington, IN 47405 USA
[2] Indiana Univ, Sch Med, Dept Cellular & Integrat Physiol, Indianapolis, IN USA
[3] Indiana Univ, Sch Med, Dept Obstet & Gynecol, Indianapolis, IN 46202 USA
[4] Indiana Univ, Simon Canc Ctr, Indianapolis, IN 46204 USA
[5] Natl Ctr Cell Sci, Pune, Maharashtra, India
[6] Ohio State Univ, Ctr Comprehens Canc, Dept Biomed Informat, Columbus, OH 43210 USA
[7] Ohio State Univ, Ctr Comprehens Canc, Div Human Canc Genet, Columbus, OH 43210 USA
关键词
histone modifications; gene expression; chromatin remodeling; ovarian cancer; epigenetic plasticity; tumor microenvironment; bivalent histone mark; EMBRYONIC STEM-CELLS; EPITHELIAL-MESENCHYMAL TRANSITION; TUMOR-SUPPRESSOR GENES; DNA METHYLATION; BREAST-CANCER; PHENOTYPIC PLASTICITY; SURFACE EPITHELIUM; CHROMATIN PATTERN; MIR-200; FAMILY; MAMMARY-GLAND;
D O I
10.4161/epi.5.8.13014
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
"Epigenetic plasticity" refers to the capability of mammalian cells to alter their differentiation status via chromatin remodeling-associated alterations in gene expression. While epigenetic plasticity has been best associated with lineage commitment of embryonic stem cells, recent studies have demonstrated chromatin remodeling even in terminally differentiated normal cells and advanced-stage melanoma and breast cancer cells, in context-dependent responses to alterations in their microenvironment. In the current study, we extend this attribute of epigenetic plasticity to aggressive ovarian cancer cells, by using an integrative approach to associate cellular phenotypes with chromatin modifications ("ChIP-chip") and mRNA and microRNA expression. While we identified numerous gene promoters possessing the well-known "bivalent mark" of H3K27me3/H3K4me2, we also report 14 distinct, lesser known bi-, tri- and tetravalent combinations of activating and repressive chromatin modifications, in platinum-resistant CP70 ovarian cancer cells. The vast majority (>90%) of all the histone marks studied localized to regions within 2,000 bp of transcription start sites, supporting a role in gene regulation. Upon a simple alteration in the microenvironment, transition from two-to three-dimensional culture, an increase (17-38%) in repressive-only marked promoters was observed, concomitant with a decrease (31-21%) in multivalent (i.e., juxtaposed permissive and repressive histone marked) promoters. Like embryonic/tissue stem and other (non-ovarian) carcinoma cells, ovarian cancer cell epigenetic plasticity reflects an inherent transcriptional flexibility for context-responsive alterations in phenotype. It is possible that this plasticity could be therapeutically exploited for the management of this lethal gynecologic malignancy.
引用
收藏
页码:716 / 729
页数:14
相关论文
共 50 条
  • [21] The epigenetic reprogramming of tumor cells by the microenvironment
    Hendrix, Mary J. C.
    Kulesa, Paul M.
    Kasemeier-Kulesa, Jennifer C.
    Teddy, Jessica M.
    Margaryan, Naira V.
    Seftor, Elisabeth A.
    Postovit, Lynne-Marie
    Seftor, Richard E. B.
    CLINICAL & EXPERIMENTAL METASTASIS, 2007, 24 (04) : 226 - 227
  • [22] Epigenetic Changes in Ovarian Cancer
    Balch, Curt
    Fang, Fang
    Matei, Daniela E.
    Huang, Tim H. -M.
    Nephew, Kenneth P.
    ENDOCRINOLOGY, 2009, 150 (09) : 4003 - 4011
  • [23] Epigenetic markers of ovarian cancer
    Barton, Caroline A.
    Clark, Susan J.
    Hacker, Neville F.
    O'Brien, Philippa M.
    OVARIAN CANCER: STATE OF THE ART AND FUTURE DIRECTIONS IN TRANSLATIONAL RESEARCH, 2008, 622 : 35 - 51
  • [24] Tumor microenvironment-responsive intelligent nanoplatforms for cancer theranostics
    Gong, Fei
    Yang, Nailin
    Wang, Xianwen
    Zhao, Qi
    Chen, Qian
    Liu, Zhuang
    Cheng, Liang
    NANO TODAY, 2020, 32
  • [25] Epigenetic therapeutic targets in cancer microenvironment
    Kondo, Yutaka
    Cheng, Alfred Sze-Lok
    CANCER SCIENCE, 2021, 112 : 1043 - 1043
  • [26] Epidrugs: targeting epigenetic marks in cancer treatment
    Miranda Furtado, Cristiana Libardi
    Dos Santos Luciano, Maria Claudia
    Santos, Renan Da Silva
    Furtado, Gilvan Pessoa
    Moraes, Manoel Odorico
    Pessoa, Claudia
    EPIGENETICS, 2019, 14 (12) : 1164 - 1176
  • [27] The role of GRHL2 and epigenetic remodeling in epithelial-mesenchymal plasticity in ovarian cancer cells
    Vin Yee Chung
    Tan, Tuan Zea
    Ye, Jieru
    Huang, Rui-Lan
    Lai, Hung-Cheng
    Kappei, Dennis
    Wollmann, Heike
    Guccione, Ernesto
    Huang, Ruby Yun-Ju
    COMMUNICATIONS BIOLOGY, 2019, 2 (1)
  • [28] Tumor microenvironment-responsive nanoparticles for cancer theragnostic applications
    Uthaman S.
    Huh K.M.
    Park I.-K.
    Biomaterials Research, 22 (1)
  • [29] Adapt to Persist: Glioblastoma Microenvironment and Epigenetic Regulation on Cell Plasticity
    Uribe, Daniel
    Niechi, Ignacio
    Rackov, Gorjana
    Erices, Jose I.
    San Martin, Rody
    Quezada, Claudia
    BIOLOGY-BASEL, 2022, 11 (02):
  • [30] Tumor Microenvironment-Responsive Nanoherb Delivery System for Synergistically Inhibition of Cancer Stem Cells
    Jia, Yuanyuan
    Sun, Jia
    Yang, Jingjing
    Chen, Chao
    Zhang, Zhenyu
    Yang, Kaiyong
    Shen, Peiliang
    Qu, Suchen
    He, Bangshun
    Song, Yanni
    Han, Xin
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (13) : 16329 - 16342