A genome-wide association study identifies multiple susceptibility loci for chronic lymphocytic leukemia
暂无分享,去创建一个
Aneela Majid | Guy Pratt | Göran Roos | Gunnar Juliusson | Richard Rosenquist | Richard S Houlston | Claire Dearden | Andrew G Hall | Geoffrey Summerfield | A. Pettitt | M. Dyer | R. Houlston | C. Fegan | A. Hall | G. Juliusson | R. Rosenquist | G. Sava | H. Speedy | D. Catovsky | J. Allan | C. Dearden | G. Roos | G. Jackson | Yufei Wang | G. Pratt | L. Mansouri | A. Holroyd | K. Smedby | N. Sunter | S. Jayne | A. Majid | G. Summerfield | Robert J. Harris | D. Allsup | J. Bailey | C. Pepper | James M Allan | Amy Holroyd | Yufei Wang | Martin J S Dyer | Tryfonia Mainou-Fowler | Graham H Jackson | Larry Mansouri | Chris Pepper | Chris Fegan | Helen E Speedy | Sandrine Jayne | Karin E Smedby | Andrew R Pettitt | Daniel Catovsky | Georgina P Sava | Nicola J Sunter | Robert J Harris | David J Allsup | James R Bailey | Maria Chiara Di Bernardo | T. Mainou-fowler | G. Jackson
[1] Manolis Kellis,et al. Discovery and Characterization of Chromatin States for Systematic Annotation of the Human Genome , 2011, RECOMB.
[2] M. Björkholm,et al. Elevated risk of chronic lymphocytic leukemia and other indolent non-Hodgkin’s lymphomas among relatives of patients with chronic lymphocytic leukemia , 2009, Haematologica.
[3] Jane E. Carpenter,et al. A common variant at the TERT-CLPTM1L locus is associated with estrogen receptor–negative breast cancer , 2011, Nature Genetics.
[4] Paolo Vineis,et al. Genome-wide Association Study Identifies Multiple Risk Loci for Chronic Lymphocytic Leukemia , 2013, Nature Genetics.
[5] M Hummel,et al. Design and standardization of PCR primers and protocols for detection of clonal immunoglobulin and T-cell receptor gene recombinations in suspect lymphoproliferations: Report of the BIOMED-2 Concerted Action BMH4-CT98-3936 , 2003, Leukemia.
[6] P. Loehrer. Assessment of fludarabine plus cyclophosphamide for patients with chronic lymphocytic leukaemia (the LRF CLL4 Trial): a randomised controlled trial , 2008 .
[7] R. Cawthon. Telomere measurement by quantitative PCR. , 2002, Nucleic acids research.
[8] O. Melander,et al. hTERT (-1327)T/C polymorphism is not associated with age-related telomere attrition in peripheral blood. , 2007, Biochemical and biophysical research communications.
[9] Wei Lu,et al. Multiple independent variants at the TERT locus are associated with telomere length and risks of breast and ovarian cancer , 2013, Nature Genetics.
[10] Tsun-Po Yang,et al. Genevar: a database and Java application for the analysis and visualization of SNP-gene associations in eQTL studies , 2010, Bioinform..
[11] H. Adami,et al. Investigation of six testicular germ cell tumor susceptibility genes suggests a parent-of-origin effect in SPRY4. , 2013, Human molecular genetics.
[12] Jean-Baptiste Cazier,et al. Meta-analysis of three genome-wide association studies identifies susceptibility loci for colorectal cancer at 1q41, 3q26.2, 12q13.13 and 20q13.33 , 2010, Nature Genetics.
[13] Thomas W. Mühleisen,et al. Common variation at 3q26.2, 6p21.33, 17p11.2 and 22q13.1 influences multiple myeloma risk , 2013, Nature Genetics.
[14] C. Power,et al. Cohort profile: 1958 British birth cohort (National Child Development Study). , 2006, International journal of epidemiology.
[15] Guy Pratt,et al. A genome-wide association study identifies six susceptibility loci for chronic lymphocytic leukemia , 2008, Nature Genetics.
[16] S. Batzoglou,et al. Distribution and intensity of constraint in mammalian genomic sequence. , 2005, Genome research.
[17] T. Grundström,et al. Negative Feedback Regulation of Antigen Receptors through Calmodulin Inhibition of E2A , 2012, The Journal of Immunology.
[18] D. Gudbjartsson,et al. New common variants affecting susceptibility to basal cell carcinoma , 2009, Nature Genetics.
[19] E. Campo,et al. Common variants at 2q37.3, 8q24.21, 15q21.3, and 16q24.1 influence chronic lymphocytic leukemia risk , 2010, Nature Genetics.
[20] Eurie L. Hong,et al. Annotation of functional variation in personal genomes using RegulomeDB , 2012, Genome research.
[21] E. Papaemmanuil,et al. National study of colorectal cancer genetics , 2007, British Journal of Cancer.
[22] D. Clayton,et al. Population structure, differential bias and genomic control in a large-scale, case-control association study , 2005, Nature Genetics.
[23] S. Gabriel,et al. The Structure of Haplotype Blocks in the Human Genome , 2002, Science.
[24] T. Molina,et al. Improved reliability of lymphoma diagnostics via PCR-based clonality testing: — Report of the BIOMED-2 Concerted Action BHM4-CT98-3936 , 2007, Leukemia.
[25] G. Juliusson,et al. Short telomere length is associated with NOTCH1/SF3B1/TP53 aberrations and poor outcome in newly diagnosed chronic lymphocytic leukemia patients , 2013, American journal of hematology.
[26] P. Broderick,et al. Common genetic variation contributes significantly to the risk of developing chronic lymphocytic leukemia , 2013, Haematologica.
[27] Simon C. Potter,et al. Mapping cis- and trans-regulatory effects across multiple tissues in twins , 2012, Nature Genetics.
[28] T. Eisen,et al. Bmc Cancer Identification of Low Penetrance Alleles for Lung Cancer: the Genetic Lung Cancer Predisposition Study (gelcaps) , 2008 .
[29] F. Stevenson,et al. Chronic lymphocytic leukemia: revelations from the B-cell receptor. , 2004, Blood.
[30] Wei Zheng,et al. A genome-wide association study identifies pancreatic cancer susceptibility loci on chromosomes 13q22.1, 1q32.1 and 5p15.33 , 2010, Nature Genetics.
[31] Christopher I Amos,et al. Common 5p15.33 and 6p21.33 variants influence lung cancer risk , 2008, Nature Genetics.
[32] S. Thompson,et al. Quantifying heterogeneity in a meta‐analysis , 2002, Statistics in medicine.
[33] Manolis Kellis,et al. HaploReg: a resource for exploring chromatin states, conservation, and regulatory motif alterations within sets of genetically linked variants , 2011, Nucleic Acids Res..
[34] William Wheeler,et al. A multi-stage genome-wide association study of bladder cancer identifies multiple susceptibility loci , 2010, Nature Genetics.
[35] R. Koff,et al. Meta-analysis, decision analysis, and cost-effectiveness analysis. Methods for quantitative synthesis in medicine , 1995 .
[36] A. López-Guillermo,et al. POT1 mutations cause telomere dysfunction in chronic lymphocytic leukemia , 2013, Nature Genetics.
[37] H. Adami,et al. Ultraviolet radiation exposure and risk of malignant lymphomas. , 2005, Journal of the National Cancer Institute.
[38] Eran Halperin,et al. Common variation at 6p21.31 (BAK1) influences the risk of chronic lymphocytic leukemia. , 2012, Blood.
[39] S. Ballereau,et al. TERC polymorphisms are associated both with susceptibility to colorectal cancer and with longer telomeres , 2011, Gut.
[40] Manuel A. R. Ferreira,et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. , 2007, American journal of human genetics.
[41] Hilary F Ryder,et al. Decision Analysis and Cost-effectiveness Analysis. , 2009, Seminars in spine surgery.
[42] T J Hamblin,et al. Unmutated Ig V(H) genes are associated with a more aggressive form of chronic lymphocytic leukemia. , 1999, Blood.
[43] P. Donnelly,et al. A Fine-Scale Map of Recombination Rates and Hotspots Across the Human Genome , 2005, Science.
[44] Jeffrey E. Lee,et al. Genome-wide association study identifies three new melanoma susceptibility loci , 2011, Nature Genetics.
[45] P. O’Reilly,et al. Identification of seven loci affecting mean telomere length and their association with disease , 2013, Nature Genetics.