Literature DB >> 27726100

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

Jingjing Cao1, Chenglin Luo2, Rui Peng1, Qiaoyun Guo1, Kaijuan Wang1,3, Peng Wang1,3, Hua Ye1,3, Chunhua Song4,5.   

Abstract

RAD51, RAD52, and XRCC2 are all involved in DNA homologous recombinational repair, and there are interactions among those genes. Polymorphisms in 3'-UTR of DNA repair genes may change DNA repair capacity by regulating gene expression. However, potential regulatory variants affecting their expression remain largely unexplored. Five miRNA-binding site SNPs (rs7180135 and rs45549040 in RAD51, rs1051669 and rs7963551 in RAD52 and rs3218550 in XRCC2) selected by bioinformatics method were genotyped in 498 breast cancer (BC) patients and 498 matched controls in Chinese population. Association between SNPs and BC risk was analyzed by adjusted odds ratios (ORs) and 95 % confidence intervals (CIs) in unconditional logistic regression model. Quantitative real-time (qRT) PCR and Western Blot assays were used to calculate the relative expression of RAD52 in recombinant plasmid-pGenesil-1-let-7b group and let-7b-inhibitor group. Gene-reproductive factors interactions were evaluated by multifactor dimensionality reduction (MDR) method. We found that individuals with AC (OR 0.684, 95%CI 0.492-0.951) and CC (OR 0.317, 95%CI 0.200-0.503) genotypes of rs7963551 had a significantly lower risk of breast cancer and qRT-PCR and Western Blot revealed that let-7b might downregulate the expression of RAD52 in MCF-7 and SKBR-3 cells. A significant interaction between the number of pregnancy (≥2) and rs7963551 (Ars7963551) was found to increase breast cancer risk by 2.63-fold (OR 2.63; 95%CI 2.03-3.42). In summary, the miRNA-binding SNPs in DNA repair genes RAD51, RAD52, and XRCC2 and their interaction with reproductive factors might play important roles in the development of BC, and let-7b might downregulate RAD52 expression in MCF-7 and SKBR-3 cells.

Entities:  

Keywords:  Breast cancer; DNA repair genes; Genetic susceptibility; Interaction; Let-7b; miRNA-binding site

Year:  2016        PMID: 27726100     DOI: 10.1007/s13277-016-5459-2

Source DB:  PubMed          Journal:  Tumour Biol        ISSN: 1010-4283


  52 in total

Review 1.  DNA damage, aging, and cancer.

Authors:  Jan H J Hoeijmakers
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Journal:  Proc Natl Acad Sci U S A       Date:  2014-03-10       Impact factor: 11.205

3.  Rare mutations in XRCC2 increase the risk of breast cancer.

Authors:  D J Park; F Lesueur; T Nguyen-Dumont; M Pertesi; F Odefrey; F Hammet; S L Neuhausen; E M John; I L Andrulis; M B Terry; M Daly; S Buys; F Le Calvez-Kelm; A Lonie; B J Pope; H Tsimiklis; C Voegele; F M Hilbers; N Hoogerbrugge; A Barroso; A Osorio; G G Giles; P Devilee; J Benitez; J L Hopper; S V Tavtigian; D E Goldgar; M C Southey
Journal:  Am J Hum Genet       Date:  2012-03-29       Impact factor: 11.025

4.  Precise binding of single-stranded DNA termini by human RAD52 protein.

Authors:  C A Parsons; P Baumann; E Van Dyck; S C West
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Journal:  Mutat Res       Date:  2000-06-30       Impact factor: 2.433

6.  Overexpression of RAD51 occurs in aggressive prostatic cancer.

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Review 7.  MiRSNPs or MiR-polymorphisms, new players in microRNA mediated regulation of the cell: Introducing microRNA pharmacogenomics.

Authors:  Prasun J Mishra; Pravin J Mishra; Debabrata Banerjee; Joseph R Bertino
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Review 9.  Breast cancer in China.

Authors:  Lei Fan; Kathrin Strasser-Weippl; Jun-Jie Li; Jessica St Louis; Dianne M Finkelstein; Ke-Da Yu; Wan-Qing Chen; Zhi-Ming Shao; Paul E Goss
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10.  Double-strand break repair and colorectal cancer: gene variants within 3' UTRs and microRNAs binding as modulators of cancer risk and clinical outcome.

Authors:  Alessio Naccarati; Fabio Rosa; Veronika Vymetalkova; Elisa Barone; Katerina Jiraskova; Cornelia Di Gaetano; Jan Novotny; Miroslav Levy; Ludmila Vodickova; Federica Gemignani; Tomas Buchler; Stefano Landi; Pavel Vodicka; Barbara Pardini
Journal:  Oncotarget       Date:  2016-04-26
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  5 in total

1.  Functional Variants in Linc-ROR are Associated with mRNA Expression of Linc-ROR and Breast Cancer Susceptibility.

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2.  RAD52 variants influence NSCLC risk in the Chinese population in a high altitude area.

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3.  Identification of a novel heterozygous germline RAD52 missense mutation in a patient with gallbladder carcinoma: A case report.

Authors:  Wenhu Zhao; Yongjiu Dai; Lei Yue; Jian Gu; Erhong Meng; Dongliang Wang; Siyao Liu; Xinyin Han; Xintong Wang; Guojun Li; Xinzheng Dai
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Review 4.  SNPs in miRNAs and Target Sequences: Role in Cancer and Diabetes.

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5.  XRCC2 Polymorphisms and Environmental Factors Predict High Risk of Colorectal Cancer.

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  5 in total

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