Variation in the RAD51 gene and familial breast cancer

被引:23
|
作者
Lose, Felicity
Lovelock, Paul
Chenevix-Trench, Georgia
Mann, Graham J.
Pupo, Gulietta M.
Spurdle, Amanda B. [1 ]
机构
[1] Queensland Inst Med Res, Canc & Cell Biol Div, Brisbane, Qld 4006, Australia
[2] Univ Queensland, Royal Brisbane Hosp, Sch Med, Cent Clin Div, Brisbane, Qld, Australia
[3] Univ Queensland, Sch Mol & Microbial Sci, Brisbane, Qld, Australia
[4] Univ Sydney, Westmead Hosp, Westmead Millennium Inst, Westmead Inst Canc Res, Westmead, NSW 2145, Australia
关键词
D O I
10.1186/bcr1415
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Introduction Human RAD51 is a homologue of the Escherichia coli RecA protein and is known to function in recombinational repair of double-stranded DNA breaks. Mutations in the lower eukaryotic homologues of RAD51 result in a deficiency in the repair of double-stranded DNA breaks. Loss of RAD51 function would therefore be expected to result in an elevated mutation rate, leading to accumulation of DNA damage and, hence, to increased cancer risk. RAD51 interacts directly or indirectly with a number of proteins implicated in breast cancer, such as BRCA1 and BRCA2. Similar to BRCA1 mice, RAD51(-/-) mice are embryonic lethal. The RAD51 gene region has been shown to exhibit loss of heterozygosity in breast tumours, and deregulated RAD51 expression in breast cancer patients has also been reported. Few studies have investigated the role of coding region variation in the RAD51 gene in familial breast cancer, with only one coding region variant - exon 6 c. 449G> A ( p. R150Q) - reported to date. Methods All nine coding exons of the RAD51 gene were analysed for variation in 46 well-characterised, BRCA1/2-negative breast cancer families using denaturing high-performance liquid chromatography. Genotyping of the exon 6 p. R150Q variant was performed in an additional 66 families. Additionally, lymphoblastoid cell lines from breast cancer patients were subjected to single nucleotide primer extension analysis to assess RAD51 expression. Results No coding region variation was found, and all intronic variation detected was either found in unaffected controls or was unlikely to have functional consequences. Single nucleotide primer extension analysis did not reveal any allele-specific changes in RAD51 expression in all lymphoblastoid cell lines tested. Conclusion Our study indicates that RAD51 is not a major familial breast cancer predisposition gene.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] High RAD51 gene expression is associated with aggressive biology and with poor survival in breast cancer
    Wu, Rongrong
    Patel, Ankit
    Tokumaru, Yoshihisa
    Asaoka, Mariko
    Oshi, Masanori
    Yan, Li
    Ishikawa, Takashi
    Takabe, Kazuaki
    BREAST CANCER RESEARCH AND TREATMENT, 2022, 193 (01) : 49 - 63
  • [22] Polymorphisms of the BRCA2 and RAD51 Genes in Breast Cancer
    Tomasz Sliwinski
    Renata Krupa
    Ireneusz Majsterek
    Jan Rykala
    Agnieszka Kolacinska
    Zbigniew Morawiec
    Jozef Drzewoski
    Marek Zadrozny
    Janusz Blasiak
    Breast Cancer Research and Treatment, 2005, 94 : 105 - 109
  • [23] Overexpression of RAD51 promotes brain metastases from breast cancer
    Woditschka, Stephan
    Palmieri, Diane
    Duchnowska, Renata
    Jassem, Jacek
    Badve, Sunil
    Sledge, George W.
    Steeg, Patricia S.
    CANCER RESEARCH, 2012, 72
  • [24] Overexpression of RAD51 promotes brain metastases from breast cancer
    Woditschka, Stephan
    Palmieri, Diane
    Duchnowska, Renata
    Jassem, Jacek
    Badve, Sunil
    Sledge, George W.
    Steeg, Patricia S.
    CANCER RESEARCH, 2013, 73 (08)
  • [25] Polymorphisms of the BRCA2 and RAD51 genes in breast cancer
    Sliwinski, T
    Krupa, R
    Majsterek, I
    Rykala, J
    Kolacinska, A
    Morawiec, Z
    Drzewoski, J
    Zadrozny, M
    Blasiak, J
    BREAST CANCER RESEARCH AND TREATMENT, 2005, 94 (02) : 105 - 109
  • [26] Polymorphic Variants in 5′-UTR Regions of the RAD51 Gene are Associated With RAD51 Expression and Triple-Negative Breast Cancer (TNBC): A Case-Control Study
    Al Hamad, Mohammad
    Kussaibi, Haitham
    Alkharsah, Khaled R.
    Alsayyah, Ahmed
    El Shawarby, Mohammed
    Al Tamimi, Dalal
    Alomari, Munther
    Bakshi, Hamid A.
    Tambuwala, Murtaza M.
    Al Zoubi, Mazhar S.
    APPLIED IMMUNOHISTOCHEMISTRY & MOLECULAR MORPHOLOGY, 2021, 29 (04) : 270 - 276
  • [27] RAD51 Gene Family Structure and Function
    Bonilla, Braulio
    Hengel, Sarah R.
    Grundy, McKenzie K.
    Bernstein, Kara A.
    ANNUAL REVIEW OF GENETICS, VOL 54, 2020, 2020, 54 : 25 - 46
  • [28] RAD51 GENE POLYMORPHISMS AND SPORADIC COLORECTAL CANCER RISK IN POLAND
    Romanowicz-Makowska, Hanna
    Samulak, Dariusz
    Michalska, Magdalena
    Sporny, Stanislaw
    Langner, Ewa
    Dziki, Adam
    Sychowski, Radoslaw
    Smolarz, Beata
    POLISH JOURNAL OF PATHOLOGY, 2012, 63 (03) : 193 - 198
  • [29] RAD51 135G > C polymorphism and risk of familial breast cancer in a South American population
    Jara, Lilian
    Acevedo, Monica L.
    Blanco, Rafael
    Castro, Victor G.
    Bravo, Teresa
    Gomez, Fernando
    Waugh, Enrique
    Peralta, Octavio
    Cabrera, Elsa
    Reyes, Jose M.
    Ampuero, Sandra
    Gonzalez-Hormazabal, Patricio
    CANCER GENETICS AND CYTOGENETICS, 2007, 178 (01) : 65 - 69
  • [30] Regulation and pharmacological targeting of RAD51 in cancer
    Grundy, McKenzie K.
    Buckanovich, Ronald J.
    Bernstein, Kara A.
    NAR CANCER, 2020, 2 (03):