Terms: = Breast cancer AND XPA, XPAC, 7507, ENSG00000136936, XP1, P23025
30 results:
1. Predictive value of DNA repair gene expression for response to neoadjuvant chemotherapy in breast cancer.
Kneubil MC; Goulart KOB; Brollo J; Coelho GP; Mandelli J; Orlandin BC; Corso LL; Roesch-Ely M; Henriques JAP
Braz J Med Biol Res; 2022; 55():e11857. PubMed ID: 35293552
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2. Comprehensive analysis of germline mutations in northern Brazil: a panel of 16 genes for hereditary cancer-predisposing syndrome investigation.
Vidal AF; Ferraz RS; El-Husny A; Silva CS; Vinasco-Sandoval T; Magalhães L; Raiol-Moraes M; Barra WF; Pereira CLBL; de Assumpção PP; de Brito LM; Vialle RA; Santos S; Ribeiro-Dos-Santos Â; Ribeiro-Dos-Santos AM
BMC Cancer; 2021 Apr; 21(1):363. PubMed ID: 33827469
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3. The diagnostic value of DNA repair gene in breast cancer metastasis.
Yang Y; Li X; Hao L; Jiang D; Wu B; He T; Tang Y
Sci Rep; 2020 Nov; 10(1):19626. PubMed ID: 33184404
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4. Enhanced Activity of Variant DNA Polymerase β (D160G) Contributes to Cisplatin Therapy by Impeding the Efficiency of NER.
Wang M; Li E; Lin L; Kumar AK; Pan F; He L; Zhang J; Hu Z; Guo Z
Mol Cancer Res; 2019 Oct; 17(10):2077-2088. PubMed ID: 31350308
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5. Association of xpa polymorphism with breast cancer risk: A meta-analysis.
Zhang Y; Guo Q; Yin X; Zhu X; Zhao L; Zhang Z; Wei R; Wang B; Li X
Medicine (Baltimore); 2018 Jun; 97(26):e11276. PubMed ID: 29953005
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6. Association study of genetic variation in DNA repair pathway genes and risk of basal cell carcinoma.
Lin Y; Chahal HS; Wu W; Cho HG; Ransohoff KJ; Song F; Tang JY; Sarin KY; Han J
Int J Cancer; 2017 Sep; 141(5):952-957. PubMed ID: 28510302
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7. XAB2 functions in mitotic cell cycle progression via transcriptional regulation of CENPE.
Hou S; Li N; Zhang Q; Li H; Wei X; Hao T; Li Y; Azam S; Liu C; Cheng W; Jin B; Liu Q; Li M; Lei H
Cell Death Dis; 2016 Oct; 7(10):e2409. PubMed ID: 27735937
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8. Pathological complete response after cisplatin neoadjuvant therapy is associated with the downregulation of DNA repair genes in BRCA1-associated triple-negative breast cancers.
Domagala P; Hybiak J; Rys J; Byrski T; Cybulski C; Lubinski J
Oncotarget; 2016 Oct; 7(42):68662-68673. PubMed ID: 27626685
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9. Covalent DNA-Protein Cross-Linking by Phosphoramide Mustard and Nornitrogen Mustard in Human Cells.
Groehler A; Villalta PW; Campbell C; Tretyakova N
Chem Res Toxicol; 2016 Feb; 29(2):190-202. PubMed ID: 26692166
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10. The relationship between seven common polymorphisms from five DNA repair genes and the risk for breast cancer in northern Chinese women.
Ding P; Yang Y; Cheng L; Zhang X; Cheng L; Li C; Cai J
PLoS One; 2014; 9(3):e92083. PubMed ID: 24642895
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11. Laryngeal cancer risk and common single nucleotide polymorphisms in nucleotide excision repair pathway genes ERCC1, ERCC2, ERCC3, ERCC4, ERCC5 and xpa.
Lu B; Li J; Gao Q; Yu W; Yang Q; Li X
Gene; 2014 May; 542(1):64-8. PubMed ID: 24582975
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12. Cadmium and cancer.
Hartwig A
Met Ions Life Sci; 2013; 11():491-507. PubMed ID: 23430782
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13. Cross-platform pathway-based analysis identifies markers of response to the PARP inhibitor olaparib.
Daemen A; Wolf DM; Korkola JE; Griffith OL; Frankum JR; Brough R; Jakkula LR; Wang NJ; Natrajan R; Reis-Filho JS; Lord CJ; Ashworth A; Spellman PT; Gray JW; van't Veer LJ
Breast Cancer Res Treat; 2012 Sep; 135(2):505-17. PubMed ID: 22875744
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14. xpa A23G polymorphism and susceptibility to cancer: a meta-analysis.
Liu J; Zhang Z; Cao XL; Lei DP; Wang ZQ; Jin T; Pan XL
Mol Biol Rep; 2012 Jun; 39(6):6791-9. PubMed ID: 22314912
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15. xpa-210: a new proliferation marker determines locally advanced prostate cancer and is a predictor of biochemical recurrence.
Aufderklamm S; Hennenlotter J; Todenhoefer T; Gakis G; Schilling D; Vogel U; Kuehs U; Dlugosch J; Knapp J; Merseburger A; Gerber V; Ordelheide A; Hevler J; Stenzl A; Schwentner C
World J Urol; 2012 Aug; 30(4):547-52. PubMed ID: 21969130
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16. Acute myeloid leukemia of donor origin after allogeneic stem cell transplantation from a sibling who harbors germline XPD and XRCC3 homozygous polymorphisms.
Diamond HR; Ornellas MH; Orfao A; Gomes BE; Campos MM; Fernandez TS; da Silva RI; Alves G; Lage C; da Silva DA; Moellmann-Coelho A; da Cruz GS; Bouzas LF; Abdelhay E
J Hematol Oncol; 2011 Sep; 4():39. PubMed ID: 21951951
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17. Xeroderma pigmentosum complementation group C single-nucleotide polymorphisms in the nucleotide excision repair pathway correlate with prolonged progression-free survival in advanced ovarian cancer.
Fleming ND; Agadjanian H; Nassanian H; Miller CW; Orsulic S; Karlan BY; Walsh CS
Cancer; 2012 Feb; 118(3):689-97. PubMed ID: 21751198
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18. SNP-SNP interactions between DNA repair genes were associated with breast cancer risk in a Korean population.
Han W; Kim KY; Yang SJ; Noh DY; Kang D; Kwack K
Cancer; 2012 Feb; 118(3):594-602. PubMed ID: 21751184
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19. Association between single-nucleotide polymorphisms of selected genes involved in the response to DNA damage and risk of colon, head and neck, and breast cancers in a Polish population.
Jelonek K; Gdowicz-Klosok A; Pietrowska M; Borkowska M; Korfanty J; Rzeszowska-Wolny J; Widlak P
J Appl Genet; 2010; 51(3):343-52. PubMed ID: 20720310
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20. Recruitment of fanconi anemia and breast cancer proteins to DNA damage sites is differentially governed by replication.
Shen X; Do H; Li Y; Chung WH; Tomasz M; de Winter JP; Xia B; Elledge SJ; Wang W; Li L
Mol Cell; 2009 Sep; 35(5):716-23. PubMed ID: 19748364
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