Literature DB >> 25700553

The lncRNA DRAIC/PCAT29 Locus Constitutes a Tumor-Suppressive Nexus.

Kouhei Sakurai1, Brian J Reon1, Jordan Anaya1, Anindya Dutta2.   

Abstract

UNLABELLED: Long noncoding RNAs (lncRNA) are emerging as major regulators of cellular phenotypes and implicated as oncogenes or tumor suppressors. Here, we report a novel tumor-suppressive locus on human chromosome 15q23 that contains two multiexonic lncRNA genes of 100 kb each: DRAIC (LOC145837) and the recently reported PCAT29. The DRAIC lncRNA was identified from RNA-seq data and is downregulated as prostate cancer cells progress from an androgen-dependent (AD) to a castration-resistant (CR) state. Prostate cancers persisting in patients after androgen deprivation therapy (ADT) select for decreased DRAIC expression, and higher levels of DRAIC in prostate cancer are associated with longer disease-free survival (DFS). Androgen induced androgen receptor (AR) binding to the DRAIC locus and repressed DRAIC expression. In contrast, FOXA1 and NKX3-1 are recruited to the DRAIC locus to induce DRAIC, and FOXA1 specifically counters the repression of DRAIC by AR. The decrease of FOXA1 and NKX3-1, and aberrant activation of AR, thus accounts for the decrease of DRAIC during prostate cancer progression to the CR state. Consistent with DRAIC being a good prognostic marker, DRAIC prevents the transformation of cuboidal epithelial cells to fibroblast-like morphology and prevents cellular migration and invasion. A second tumor-suppressive lncRNA PCAT29, located 20 kb downstream of DRAIC, is regulated identically by AR and FOXA1 and also suppresses cellular migration and metastasis. Finally, based on TCGA analysis, DRAIC expression predicts good prognosis in a wide range of malignancies, including bladder cancer, low-grade gliomas, lung adenocarcinoma, stomach adenocarcinoma, renal clear cell carcinoma, hepatocellular carcinoma, skin melanoma, and stomach adenocarcinoma. IMPLICATIONS: This study reveals a novel tumor-suppressive locus encoding two hormone-regulated lncRNAs, DRAIC and PCAT29, that are prognostic for a wide variety of cancer types. ©2015 American Association for Cancer Research.

Entities:  

Mesh:

Substances:

Year:  2015        PMID: 25700553      PMCID: PMC4456356          DOI: 10.1158/1541-7786.MCR-15-0016-T

Source DB:  PubMed          Journal:  Mol Cancer Res        ISSN: 1541-7786            Impact factor:   5.852


  33 in total

Review 1.  Long non-coding RNAs as emerging regulators of differentiation, development, and disease.

Authors:  Bijan K Dey; Adam C Mueller; Anindya Dutta
Journal:  Transcription       Date:  2014-10-30

2.  FOXA1 promotes tumor progression in prostate cancer and represents a novel hallmark of castration-resistant prostate cancer.

Authors:  Josefine Gerhardt; Matteo Montani; Peter Wild; Marc Beer; Fabian Huber; Thomas Hermanns; Michael Müntener; Glen Kristiansen
Journal:  Am J Pathol       Date:  2011-12-02       Impact factor: 4.307

3.  Lysine-specific demethylase 1 has dual functions as a major regulator of androgen receptor transcriptional activity.

Authors:  Changmeng Cai; Housheng Hansen He; Shuai Gao; Sen Chen; Ziyang Yu; Yanfei Gao; Shaoyong Chen; Mei Wei Chen; Jesse Zhang; Musaddeque Ahmed; Yang Wang; Eric Metzger; Roland Schüle; X Shirley Liu; Myles Brown; Steven P Balk
Journal:  Cell Rep       Date:  2014-12-04       Impact factor: 9.423

4.  The lncRNA PCAT29 inhibits oncogenic phenotypes in prostate cancer.

Authors:  Rohit Malik; Lalit Patel; John R Prensner; Yang Shi; Matthew K Iyer; Shruthi Subramaniyan; Alexander Carley; Yashar S Niknafs; Anirban Sahu; Sumin Han; Teng Ma; Meilan Liu; Irfan A Asangani; Xiaojun Jing; Xuhong Cao; Saravana M Dhanasekaran; Dan R Robinson; Felix Y Feng; Arul M Chinnaiyan
Journal:  Mol Cancer Res       Date:  2014-07-16       Impact factor: 5.852

5.  The cBio cancer genomics portal: an open platform for exploring multidimensional cancer genomics data.

Authors:  Ethan Cerami; Jianjiong Gao; Ugur Dogrusoz; Benjamin E Gross; Selcuk Onur Sumer; Bülent Arman Aksoy; Anders Jacobsen; Caitlin J Byrne; Michael L Heuer; Erik Larsson; Yevgeniy Antipin; Boris Reva; Arthur P Goldberg; Chris Sander; Nikolaus Schultz
Journal:  Cancer Discov       Date:  2012-05       Impact factor: 39.397

6.  Persistent androgen receptor-mediated transcription in castration-resistant prostate cancer under androgen-deprived conditions.

Authors:  Keith F Decker; Dali Zheng; Yuhong He; Tamara Bowman; John R Edwards; Li Jia
Journal:  Nucleic Acids Res       Date:  2012-09-27       Impact factor: 16.971

7.  Next-generation sequencing of advanced prostate cancer treated with androgen-deprivation therapy.

Authors:  Prabhakar Rajan; Ian M Sudbery; M Eugenia M Villasevil; Ernest Mui; Janis Fleming; Mark Davis; Imran Ahmad; Joanne Edwards; Owen J Sansom; David Sims; Chris P Ponting; Andreas Heger; Rhona M McMenemin; Ian D Pedley; Hing Y Leung
Journal:  Eur Urol       Date:  2013-08-14       Impact factor: 20.096

8.  Meta-analysis of tRNA derived RNA fragments reveals that they are evolutionarily conserved and associate with AGO proteins to recognize specific RNA targets.

Authors:  Pankaj Kumar; Jordan Anaya; Suresh B Mudunuri; Anindya Dutta
Journal:  BMC Biol       Date:  2014-10-01       Impact factor: 7.431

9.  Chromatin accessibility reveals insights into androgen receptor activation and transcriptional specificity.

Authors:  Alok K Tewari; Galip Gürkan Yardimci; Yoichiro Shibata; Nathan C Sheffield; Lingyun Song; Barry S Taylor; Stoyan G Georgiev; Gerhard A Coetzee; Uwe Ohler; Terrence S Furey; Gregory E Crawford; Phillip G Febbo
Journal:  Genome Biol       Date:  2012-10-03       Impact factor: 13.583

10.  Elevated levels of FOXA1 facilitate androgen receptor chromatin binding resulting in a CRPC-like phenotype.

Authors:  J L L Robinson; T E Hickey; A Y Warren; S L Vowler; T Carroll; A D Lamb; N Papoutsoglou; D E Neal; W D Tilley; J S Carroll
Journal:  Oncogene       Date:  2013-12-02       Impact factor: 9.867

View more
  50 in total

Review 1.  Biological Processes Discovered by High-Throughput Sequencing.

Authors:  Brian J Reon; Anindya Dutta
Journal:  Am J Pathol       Date:  2016-01-30       Impact factor: 4.307

2.  A Prognostic Signature for Lower Grade Gliomas Based on Expression of Long Non-Coding RNAs.

Authors:  Manjari Kiran; Ajay Chatrath; Xiwei Tang; Daniel Macrae Keenan; Anindya Dutta
Journal:  Mol Neurobiol       Date:  2018-11-03       Impact factor: 5.590

3.  A high-throughput screen identifies the long non-coding RNA DRAIC as a regulator of autophagy.

Authors:  Imke Tiessen; Marie H Abildgaard; Michal Lubas; Helene M Gylling; Cornelia Steinhauer; Elin J Pietras; Sven Diederichs; Lisa B Frankel; Anders H Lund
Journal:  Oncogene       Date:  2019-03-14       Impact factor: 9.867

4.  Long Noncoding RNA FENDRR Exhibits Antifibrotic Activity in Pulmonary Fibrosis.

Authors:  Chaoqun Huang; Yurong Liang; Xiangming Zeng; Xiaoyun Yang; Dao Xu; Xuxu Gou; Roshini Sathiaseelan; Lakmini Kumari Senavirathna; Pengcheng Wang; Lin Liu
Journal:  Am J Respir Cell Mol Biol       Date:  2020-04       Impact factor: 6.914

5.  Oncogenic RAS Regulates Long Noncoding RNA Orilnc1 in Human Cancer.

Authors:  Dongmei Zhang; Gao Zhang; Xiaowen Hu; Lawrence Wu; Yi Feng; Sidan He; Youyou Zhang; Zhongyi Hu; Lu Yang; Tian Tian; Weiting Xu; Zhi Wei; Yiling Lu; Keith T Flaherty; Xiaomin Zhong; Gordon B Mills; Phyllis A Gimotty; Xiaowei Xu; Meenhard Herlyn; Lin Zhang
Journal:  Cancer Res       Date:  2017-05-04       Impact factor: 12.701

6.  Androgens induce a distinct response of epithelial-mesenchymal transition factors in human prostate cancer cells.

Authors:  Juliane Colditz; Benjamin Rupf; Caroline Maiwald; Aria Baniahmad
Journal:  Mol Cell Biochem       Date:  2016-08-25       Impact factor: 3.396

7.  Discovery, Annotation, and Functional Analysis of Long Noncoding RNAs Controlling Cell-Cycle Gene Expression and Proliferation in Breast Cancer Cells.

Authors:  Miao Sun; Shrikanth S Gadad; Dae-Seok Kim; W Lee Kraus
Journal:  Mol Cell       Date:  2015-07-30       Impact factor: 17.970

8.  Long Noncoding RNA DRAIC Inhibits Prostate Cancer Progression by Interacting with IKK to Inhibit NF-κB Activation.

Authors:  Shekhar Saha; Manjari Kiran; Canan Kuscu; Ajay Chatrath; David Wotton; Marty W Mayo; Anindya Dutta
Journal:  Cancer Res       Date:  2020-01-03       Impact factor: 12.701

9.  LINC00152 Promotes Invasion through a 3'-Hairpin Structure and Associates with Prognosis in Glioblastoma.

Authors:  Brian J Reon; Bruno Takao Real Karia; Manjari Kiran; Anindya Dutta
Journal:  Mol Cancer Res       Date:  2018-07-10       Impact factor: 5.852

10.  Long noncoding RNAs in cancer: from function to translation.

Authors:  Anirban Sahu; Udit Singhal; Arul M Chinnaiyan
Journal:  Trends Cancer       Date:  2015-10-01
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.