Cargando…

NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis

The pluripotency transcription factor NANOG has been implicated in tumor development, and NANOG-expressing cancer cells manifest stem cell properties that sustain tumor homeostasis, mediate therapy resistance and fuel tumor progression. However, how NANOG converges on somatic circuitry to trigger on...

Descripción completa

Detalles Bibliográficos
Autores principales: Jeter, Collene R, Liu, Bigang, Lu, Yue, Chao, Hsueh-Ping, Zhang, Dingxiao, Liu, Xin, Chen, Xin, Li, Qiuhui, Rycaj, Kiera, Calhoun-Davis, Tammy, Yan, Li, Hu, Qiang, Wang, Jianmin, Shen, Jianjun, Liu, Song, Tang, Dean G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5109294/
https://www.ncbi.nlm.nih.gov/pubmed/27867534
http://dx.doi.org/10.1038/celldisc.2016.41
_version_ 1782467508106690560
author Jeter, Collene R
Liu, Bigang
Lu, Yue
Chao, Hsueh-Ping
Zhang, Dingxiao
Liu, Xin
Chen, Xin
Li, Qiuhui
Rycaj, Kiera
Calhoun-Davis, Tammy
Yan, Li
Hu, Qiang
Wang, Jianmin
Shen, Jianjun
Liu, Song
Tang, Dean G
author_facet Jeter, Collene R
Liu, Bigang
Lu, Yue
Chao, Hsueh-Ping
Zhang, Dingxiao
Liu, Xin
Chen, Xin
Li, Qiuhui
Rycaj, Kiera
Calhoun-Davis, Tammy
Yan, Li
Hu, Qiang
Wang, Jianmin
Shen, Jianjun
Liu, Song
Tang, Dean G
author_sort Jeter, Collene R
collection PubMed
description The pluripotency transcription factor NANOG has been implicated in tumor development, and NANOG-expressing cancer cells manifest stem cell properties that sustain tumor homeostasis, mediate therapy resistance and fuel tumor progression. However, how NANOG converges on somatic circuitry to trigger oncogenic reprogramming remains obscure. We previously reported that inducible NANOG expression propels the emergence of aggressive castration-resistant prostate cancer phenotypes. Here we first show that endogenous NANOG is required for the growth of castration-resistant prostate cancer xenografts. Genome-wide chromatin immunoprecipitation sequencing coupled with biochemical assays unexpectedly reveals that NANOG co-occupies a distinctive proportion of androgen receptor/Forkhead box A1 genomic loci and physically interacts with androgen receptor and Forkhead box A1. Integrative analysis of chromatin immunoprecipitation sequencing and time-resolved RNA sequencing demonstrates that NANOG dynamically alters androgen receptor/Forkhead box A1 signaling leading to both repression of androgen receptor-regulated pro-differentiation genes and induction of genes associated with cell cycle, stem cells, cell motility and castration resistance. Our studies reveal global molecular mechanisms whereby NANOG reprograms prostate cancer cells to a clinically relevant castration-resistant stem cell-like state driven by distinct NANOG-regulated gene clusters that correlate with patient survival. Thus, reprogramming factors such as NANOG may converge on and alter lineage-specific master transcription factors broadly in somatic cancers, thereby facilitating malignant disease progression and providing a novel route for therapeutic resistance.
format Online
Article
Text
id pubmed-5109294
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-51092942016-11-18 NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis Jeter, Collene R Liu, Bigang Lu, Yue Chao, Hsueh-Ping Zhang, Dingxiao Liu, Xin Chen, Xin Li, Qiuhui Rycaj, Kiera Calhoun-Davis, Tammy Yan, Li Hu, Qiang Wang, Jianmin Shen, Jianjun Liu, Song Tang, Dean G Cell Discov Article The pluripotency transcription factor NANOG has been implicated in tumor development, and NANOG-expressing cancer cells manifest stem cell properties that sustain tumor homeostasis, mediate therapy resistance and fuel tumor progression. However, how NANOG converges on somatic circuitry to trigger oncogenic reprogramming remains obscure. We previously reported that inducible NANOG expression propels the emergence of aggressive castration-resistant prostate cancer phenotypes. Here we first show that endogenous NANOG is required for the growth of castration-resistant prostate cancer xenografts. Genome-wide chromatin immunoprecipitation sequencing coupled with biochemical assays unexpectedly reveals that NANOG co-occupies a distinctive proportion of androgen receptor/Forkhead box A1 genomic loci and physically interacts with androgen receptor and Forkhead box A1. Integrative analysis of chromatin immunoprecipitation sequencing and time-resolved RNA sequencing demonstrates that NANOG dynamically alters androgen receptor/Forkhead box A1 signaling leading to both repression of androgen receptor-regulated pro-differentiation genes and induction of genes associated with cell cycle, stem cells, cell motility and castration resistance. Our studies reveal global molecular mechanisms whereby NANOG reprograms prostate cancer cells to a clinically relevant castration-resistant stem cell-like state driven by distinct NANOG-regulated gene clusters that correlate with patient survival. Thus, reprogramming factors such as NANOG may converge on and alter lineage-specific master transcription factors broadly in somatic cancers, thereby facilitating malignant disease progression and providing a novel route for therapeutic resistance. Nature Publishing Group 2016-11-15 /pmc/articles/PMC5109294/ /pubmed/27867534 http://dx.doi.org/10.1038/celldisc.2016.41 Text en Copyright © 2016 The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Jeter, Collene R
Liu, Bigang
Lu, Yue
Chao, Hsueh-Ping
Zhang, Dingxiao
Liu, Xin
Chen, Xin
Li, Qiuhui
Rycaj, Kiera
Calhoun-Davis, Tammy
Yan, Li
Hu, Qiang
Wang, Jianmin
Shen, Jianjun
Liu, Song
Tang, Dean G
NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title_full NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title_fullStr NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title_full_unstemmed NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title_short NANOG reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the AR/FOXA1 signaling axis
title_sort nanog reprograms prostate cancer cells to castration resistance via dynamically repressing and engaging the ar/foxa1 signaling axis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5109294/
https://www.ncbi.nlm.nih.gov/pubmed/27867534
http://dx.doi.org/10.1038/celldisc.2016.41
work_keys_str_mv AT jetercollener nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT liubigang nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT luyue nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT chaohsuehping nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT zhangdingxiao nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT liuxin nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT chenxin nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT liqiuhui nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT rycajkiera nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT calhoundavistammy nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT yanli nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT huqiang nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT wangjianmin nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT shenjianjun nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT liusong nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis
AT tangdeang nanogreprogramsprostatecancercellstocastrationresistanceviadynamicallyrepressingandengagingthearfoxa1signalingaxis