Literature DB >> 25189356

Whole transcriptome sequencing reveals extensive unspliced mRNA in metastatic castration-resistant prostate cancer.

Adam G Sowalsky1, Zheng Xia2, Liguo Wang2, Hao Zhao2, Shaoyong Chen1, Glenn J Bubley1, Steven P Balk3, Wei Li4.   

Abstract

UNLABELLED: Men with metastatic prostate cancer who are treated with androgen deprivation therapies (ADT) usually relapse within 2 to 3 years with disease that is termed castration-resistant prostate cancer (CRPC). To identify the mechanism that drives these advanced tumors, paired-end RNA-sequencing (RNA-seq) was performed on a panel of CRPC bone marrow biopsy specimens. From this genome-wide approach, mutations were found in a series of genes with prostate cancer relevance, including AR, NCOR1, KDM3A, KDM4A, CHD1, SETD5, SETD7, INPP4B, RASGRP3, RASA1, TP53BP1, and CDH1, and a novel SND1:BRAF gene fusion. Among the most highly expressed transcripts were 10 noncoding RNAs (ncRNAs), including MALAT1 and PABPC1, which are involved in RNA processing. Notably, a high percentage of sequence reads mapped to introns, which were determined to be the result of incomplete splicing at canonical splice junctions. Using quantitative PCR (qPCR), a series of genes (AR, KLK2, KLK3, STEAP2, CPSF6, and CDK19) were confirmed to have a greater proportion of unspliced RNA in CRPC specimens than in normal prostate epithelium, untreated primary prostate cancer, and cultured prostate cancer cells. This inefficient coupling of transcription and mRNA splicing suggests an overall increase in transcription or defect in splicing. IMPLICATIONS: Inefficient splicing in advanced prostate cancer provides a selective advantage through effects on microRNA networks but may render tumors vulnerable to agents that suppress rate-limiting steps in splicing. ©2014 American Association for Cancer Research.

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Year:  2014        PMID: 25189356      PMCID: PMC4312515          DOI: 10.1158/1541-7786.MCR-14-0273

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


  39 in total

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Review 2.  Molecular genetics of prostate cancer: new prospects for old challenges.

Authors:  Michael M Shen; Cory Abate-Shen
Journal:  Genes Dev       Date:  2010-09-15       Impact factor: 11.361

3.  TMPRSS2:ETV4 gene fusions define a third molecular subtype of prostate cancer.

Authors:  Scott A Tomlins; Rohit Mehra; Daniel R Rhodes; Lisa R Smith; Diane Roulston; Beth E Helgeson; Xuhong Cao; John T Wei; Mark A Rubin; Rajal B Shah; Arul M Chinnaiyan
Journal:  Cancer Res       Date:  2006-04-01       Impact factor: 12.701

4.  Pcdp1 is a central apparatus protein that binds Ca(2+)-calmodulin and regulates ciliary motility.

Authors:  Christen G DiPetrillo; Elizabeth F Smith
Journal:  J Cell Biol       Date:  2010-04-26       Impact factor: 10.539

5.  Derivation of androgen-independent human LNCaP prostatic cancer cell sublines: role of bone stromal cells.

Authors:  H C Wu; J T Hsieh; M E Gleave; N M Brown; S Pathak; L W Chung
Journal:  Int J Cancer       Date:  1994-05-01       Impact factor: 7.396

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.  Increased expression of genes converting adrenal androgens to testosterone in androgen-independent prostate cancer.

Authors:  Michael Stanbrough; Glenn J Bubley; Kenneth Ross; Todd R Golub; Mark A Rubin; Trevor M Penning; Phillip G Febbo; Steven P Balk
Journal:  Cancer Res       Date:  2006-03-01       Impact factor: 12.701

8.  Transcriptome sequencing across a prostate cancer cohort identifies PCAT-1, an unannotated lincRNA implicated in disease progression.

Authors:  John R Prensner; Matthew K Iyer; O Alejandro Balbin; Saravana M Dhanasekaran; Qi Cao; J Chad Brenner; Bharathi Laxman; Irfan A Asangani; Catherine S Grasso; Hal D Kominsky; Xuhong Cao; Xiaojun Jing; Xiaoju Wang; Javed Siddiqui; John T Wei; Daniel Robinson; Hari K Iyer; Nallasivam Palanisamy; Christopher A Maher; Arul M Chinnaiyan
Journal:  Nat Biotechnol       Date:  2011-07-31       Impact factor: 54.908

9.  The long noncoding RNA SChLAP1 promotes aggressive prostate cancer and antagonizes the SWI/SNF complex.

Authors:  John R Prensner; Matthew K Iyer; Anirban Sahu; Irfan A Asangani; Qi Cao; Lalit Patel; Ismael A Vergara; Elai Davicioni; Nicholas Erho; Mercedeh Ghadessi; Robert B Jenkins; Timothy J Triche; Rohit Malik; Rachel Bedenis; Natalie McGregor; Teng Ma; Wei Chen; Sumin Han; Xiaojun Jing; Xuhong Cao; Xiaoju Wang; Benjamin Chandler; Wei Yan; Javed Siddiqui; Lakshmi P Kunju; Saravana M Dhanasekaran; Kenneth J Pienta; Felix Y Feng; Arul M Chinnaiyan
Journal:  Nat Genet       Date:  2013-09-29       Impact factor: 38.330

10.  Alternative splicing programs in prostate cancer.

Authors:  Claudio Sette
Journal:  Int J Cell Biol       Date:  2013-08-01
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  42 in total

1.  Analytic Validation of RNA In Situ Hybridization (RISH) for AR and AR-V7 Expression in Human Prostate Cancer.

Authors:  Liana B Guedes; Carlos L Morais; Fawaz Almutairi; Michael C Haffner; Qizhi Zheng; John T Isaacs; Emmanuel S Antonarakis; Changxue Lu; Harrison Tsai; Jun Luo; Angelo M De Marzo; Tamara L Lotan
Journal:  Clin Cancer Res       Date:  2016-05-10       Impact factor: 12.531

Review 2.  The Chromodomain Helicase DNA-Binding Chromatin Remodelers: Family Traits that Protect from and Promote Cancer.

Authors:  Alea A Mills
Journal:  Cold Spring Harb Perspect Med       Date:  2017-04-03       Impact factor: 6.915

3.  DMP-1 promoter-associated antisense strand non-coding RNA, panRNA-DMP-1, physically associates with EGFR to repress EGF-induced squamous cell carcinoma migration.

Authors:  Shigeki Suzuki; Hang Yuan; Shizu Hirata-Tsuchiya; Kazuma Yoshida; Akiko Sato; Eiji Nemoto; Hideki Shiba; Satoru Yamada
Journal:  Mol Cell Biochem       Date:  2021-01-09       Impact factor: 3.396

Review 4.  The long noncoding RNA Malat1: Its physiological and pathophysiological functions.

Authors:  Xuejing Zhang; Milton H Hamblin; Ke-Jie Yin
Journal:  RNA Biol       Date:  2017-10-06       Impact factor: 4.652

5.  Alternative RNA Splicing as a Potential Major Source of Untapped Molecular Targets in Precision Oncology and Cancer Disparities.

Authors:  Timothy J Robinson; Jennifer A Freedman; Muthana Al Abo; April E Deveaux; Bonnie LaCroix; Brendon M Patierno; Daniel J George; Steven R Patierno
Journal:  Clin Cancer Res       Date:  2019-02-12       Impact factor: 12.531

Review 6.  RNA biomarkers to facilitate the identification of aggressive prostate cancer.

Authors:  Kathryn L Pellegrini; Martin G Sanda; Carlos S Moreno
Journal:  Mol Aspects Med       Date:  2015-05-27

7.  Long noncoding RNA MALAT1 as a putative biomarker of lymph node metastasis: a meta-analysis.

Authors:  Hui Zhai; Qing-Jie Chen; Bang-Dang Chen; Yi-Ning Yang; Yi-Tong Ma; Xiao-Mei Li; Fen Liu; Zi-Xiang Yu; Yang Xiang; Wu Liao; Hong-Mei Lai
Journal:  Int J Clin Exp Med       Date:  2015-05-15

Review 8.  DNA Methylation and Urological Cancer, a Step Towards Personalized Medicine: Current and Future Prospects.

Authors:  Javier C Angulo; Jose I López; Santiago Ropero
Journal:  Mol Diagn Ther       Date:  2016-12       Impact factor: 4.074

9.  Novel insight into MALAT-1 in cancer: Therapeutic targets and clinical applications.

Authors:  Danyang Ren; Huiying Li; Renqiu Li; Jianming Sun; Pin Guo; Huiyun Han; Yuehuang Yang; Jun Li
Journal:  Oncol Lett       Date:  2016-01-22       Impact factor: 2.967

Review 10.  Lessons from non-canonical splicing.

Authors:  Christopher R Sibley; Lorea Blazquez; Jernej Ule
Journal:  Nat Rev Genet       Date:  2016-05-31       Impact factor: 53.242

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