Literature DB >> 20002770

Overexpression of RAD51 occurs in aggressive prostatic cancer.

Anita Mitra1, Charles Jameson, Yolanda Barbachano, Lydia Sanchez, Zsofia Kote-Jarai, Susan Peock, Nayanta Sodha, Elizabeth Bancroft, Anne Fletcher, Colin Cooper, Douglas Easton, Rosalind Eeles, Christopher S Foster.   

Abstract

AIMS: To test the hypothesis that, in a matched series of prostatic cancers, either with or without BRCA1 or BRCA2 mutations, RAD51 protein expression is enhanced in association with BRCA mutation genotypes. METHODS AND
RESULTS: RAD51 expression identified immunohistochemically was compared between prostatic cancers occurring in BRCA1 or BRCA2 mutation carriers and controls. RAD51 protein expression in the cytoplasm and nuclei of the benign tissues was significantly less than in the malignant tissues (P < 0.001). In all cancers, cytoplasmic expression of RAD51 was more prevalent and associated with higher Gleason score (P < 0.05) irrespective of BRCA mutational status, than its expression in benign tissues (P < 0.001). Although nuclear immunoreactivity was not observed in BRCA-associated cancers with Gleason score < or =7, it was significantly increased in all other groups of prostatic cancers when compared with benign tissues (P < 0.001).
CONCLUSIONS: RAD51 protein is strongly expressed in high-grade prostatic cancers, whether sporadic or associated with BRCA germ-line mutations. Distinct localization of RAD51 between cytoplasm and nucleus, particularly in cancers of Gleason score < or =7, reflects distinct levels of RAD51 regulatory activity, from transcription to DNA repair. This biomarker may be of value in identifying patients requiring urgent treatment at diagnosis as well as in analysing biological mechanisms underlying aggressive phenotype of human prostatic cancer.

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Year:  2009        PMID: 20002770      PMCID: PMC2856636          DOI: 10.1111/j.1365-2559.2009.03448.x

Source DB:  PubMed          Journal:  Histopathology        ISSN: 0309-0167            Impact factor:   5.087


  43 in total

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2.  Multiple loci on 8q24 associated with prostate cancer susceptibility.

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Journal:  Nat Genet       Date:  2009-09-20       Impact factor: 38.330

3.  Dynamic changes of BRCA1 subnuclear location and phosphorylation state are initiated by DNA damage.

Authors:  R Scully; J Chen; R L Ochs; K Keegan; M Hoekstra; J Feunteun; D M Livingston
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4.  [Recommendation for uniform definition of an immunoreactive score (IRS) for immunohistochemical estrogen receptor detection (ER-ICA) in breast cancer tissue].

Authors:  W Remmele; H E Stegner
Journal:  Pathologe       Date:  1987-05       Impact factor: 1.011

5.  Association of BRCA1 with Rad51 in mitotic and meiotic cells.

Authors:  R Scully; J Chen; A Plug; Y Xiao; D Weaver; J Feunteun; T Ashley; D M Livingston
Journal:  Cell       Date:  1997-01-24       Impact factor: 41.582

6.  p53 abnormalities in primary prostate cancer: single-strand conformation polymorphism analysis of complementary DNA in comparison with genomic DNA. The Cooperative Prostate Network.

Authors:  P H Gumerlock; S G Chi; X B Shi; H J Voeller; J W Jacobson; E P Gelmann; R W deVere White
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Authors:  Jeremy M Stark; Andrew J Pierce; Jin Oh; Albert Pastink; Maria Jasin
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Review 8.  p53--a Jack of all trades but master of none.

Authors:  Melissa R Junttila; Gerard I Evan
Journal:  Nat Rev Cancer       Date:  2009-09-24       Impact factor: 60.716

9.  Identification of seven new prostate cancer susceptibility loci through a genome-wide association study.

Authors:  Rosalind A Eeles; Zsofia Kote-Jarai; Ali Amin Al Olama; Graham G Giles; Michelle Guy; Gianluca Severi; Kenneth Muir; John L Hopper; Brian E Henderson; Christopher A Haiman; Johanna Schleutker; Freddie C Hamdy; David E Neal; Jenny L Donovan; Janet L Stanford; Elaine A Ostrander; Sue A Ingles; Esther M John; Stephen N Thibodeau; Daniel Schaid; Jong Y Park; Amanda Spurdle; Judith Clements; Joanne L Dickinson; Christiane Maier; Walther Vogel; Thilo Dörk; Timothy R Rebbeck; Kathleen A Cooney; Lisa Cannon-Albright; Pierre O Chappuis; Pierre Hutter; Maurice Zeegers; Radka Kaneva; Hong-Wei Zhang; Yong-Jie Lu; William D Foulkes; Dallas R English; Daniel A Leongamornlert; Malgorzata Tymrakiewicz; Jonathan Morrison; Audrey T Ardern-Jones; Amanda L Hall; Lynne T O'Brien; Rosemary A Wilkinson; Edward J Saunders; Elizabeth C Page; Emma J Sawyer; Stephen M Edwards; David P Dearnaley; Alan Horwich; Robert A Huddart; Vincent S Khoo; Christopher C Parker; Nicholas Van As; Christopher J Woodhouse; Alan Thompson; Tim Christmas; Chris Ogden; Colin S Cooper; Melissa C Southey; Artitaya Lophatananon; Jo-Fen Liu; Laurence N Kolonel; Loic Le Marchand; Tiina Wahlfors; Teuvo L Tammela; Anssi Auvinen; Sarah J Lewis; Angela Cox; Liesel M FitzGerald; Joseph S Koopmeiners; Danielle M Karyadi; Erika M Kwon; Mariana C Stern; Roman Corral; Amit D Joshi; Ahva Shahabi; Shannon K McDonnell; Thomas A Sellers; Julio Pow-Sang; Suzanne Chambers; Joanne Aitken; R A Frank Gardiner; Jyotsna Batra; Mary Anne Kedda; Felicity Lose; Andrea Polanowski; Briony Patterson; Jürgen Serth; Andreas Meyer; Manuel Luedeke; Klara Stefflova; Anna M Ray; Ethan M Lange; Jim Farnham; Humera Khan; Chavdar Slavov; Atanaska Mitkova; Guangwen Cao; Douglas F Easton
Journal:  Nat Genet       Date:  2009-09-20       Impact factor: 38.330

10.  Gene expression profiling integrated into network modelling reveals heterogeneity in the mechanisms of BRCA1 tumorigenesis.

Authors:  R Fernández-Ramires; X Solé; L De Cecco; G Llort; A Cazorla; N Bonifaci; M J Garcia; T Caldés; I Blanco; M Gariboldi; M A Pierotti; M A Pujana; J Benítez; A Osorio
Journal:  Br J Cancer       Date:  2009-10-20       Impact factor: 7.640

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  38 in total

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2.  The RAD51-stimulatory compound RS-1 can exploit the RAD51 overexpression that exists in cancer cells and tumors.

Authors:  Jennifer M Mason; Hillary L Logan; Brian Budke; Megan Wu; Michal Pawlowski; Ralph R Weichselbaum; Alan P Kozikowski; Douglas K Bishop; Philip P Connell
Journal:  Cancer Res       Date:  2014-04-21       Impact factor: 12.701

3.  MiRNA-binding site functional polymorphisms in DNA repair genes RAD51, RAD52, and XRCC2 and breast cancer risk in Chinese population.

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Journal:  Tumour Biol       Date:  2016-10-10

4.  Nanoformulation of Olaparib Amplifies PARP Inhibition and Sensitizes PTEN/TP53-Deficient Prostate Cancer to Radiation.

Authors:  Anne L van de Ven; Shifalika Tangutoori; Paige Baldwin; Ju Qiao; Codi Gharagouzloo; Nina Seitzer; John G Clohessy; G Mike Makrigiorgos; Robert Cormack; Pier Paolo Pandolfi; Srinivas Sridhar
Journal:  Mol Cancer Ther       Date:  2017-05-12       Impact factor: 6.261

5.  Generation of reactive oxygen species by grape seed extract causes irreparable DNA damage leading to G2/M arrest and apoptosis selectively in head and neck squamous cell carcinoma cells.

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Journal:  Carcinogenesis       Date:  2012-01-19       Impact factor: 4.944

6.  RAD51 regulates CHK1 stability via autophagy to promote cell growth in esophageal squamous carcinoma cells.

Authors:  Xinyi Zhu; Qiuhui Pan; Nan Huang; Jianchun Wu; Ni Zhen; Fenyong Sun; Zhi Li; Qingyuan Yang
Journal:  Tumour Biol       Date:  2016-10-14

7.  Regulation of Rad51 promoter.

Authors:  Christopher M Hine; Hongjie Li; Li Xie; Zhiyong Mao; Andrei Seluanov; Vera Gorbunova
Journal:  Cell Cycle       Date:  2014-04-29       Impact factor: 4.534

Review 8.  DNA repair targeted therapy: The past or future of cancer treatment?

Authors:  Navnath S Gavande; Pamela S VanderVere-Carozza; Hilary D Hinshaw; Shadia I Jalal; Catherine R Sears; Katherine S Pawelczak; John J Turchi
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9.  PRKC-ζ Expression Promotes the Aggressive Phenotype of Human Prostate Cancer Cells and Is a Novel Target for Therapeutic Intervention.

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10.  STAT5A/B Blockade Sensitizes Prostate Cancer to Radiation through Inhibition of RAD51 and DNA Repair.

Authors:  Cristina Maranto; Vindhya Udhane; David T Hoang; Lei Gu; Vitali Alexeev; Kareem Malas; Karmel Cardenas; Jonathan R Brody; Ulrich Rodeck; Carmen Bergom; Ken A Iczkowski; Ken Jacobsohn; William See; Sara M Schmitt; Marja T Nevalainen
Journal:  Clin Cancer Res       Date:  2018-02-26       Impact factor: 12.531

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