Fine-Mapping and Family-Based Association Analyses of Prostate Cancer Risk Variants at Xp11
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H. Grönberg | Jianfeng Xu | Jielin Sun | F. Wiklund | S. Isaacs | Yi Zhu | K. Wiley | P. Walsh | B. Chang | W. Isaacs | S. Zheng | Shelly G. Smith | Kristen Pruett | Zheng Zhang | Lingyi Lu
[1] J. Carpten,et al. Two Independent Prostate Cancer Risk–Associated Loci at 11q13 , 2009, Cancer Epidemiology Biomarkers & Prevention.
[2] H. Grönberg,et al. Association of Prostate Cancer Risk Variants with Clinicopathologic Characteristics of the Disease , 2008, Clinical Cancer Research.
[3] J. Carpten,et al. Family-Based Samples Can Play an Important Role in Genetic Association Studies , 2008, Cancer Epidemiology Biomarkers & Prevention.
[4] J. Carpten,et al. Evidence for two independent prostate cancer risk–associated loci in the HNF1B gene at 17q12 , 2008, Nature Genetics.
[5] Elaine A. Ostrander,et al. Multiple Novel Prostate Cancer Predisposition Loci Confirmed by an International Study: The PRACTICAL Consortium , 2008, Cancer Epidemiology Biomarkers & Prevention.
[6] Kevin M. Bradley,et al. Common sequence variants on 2p15 and Xp11.22 confer susceptibility to prostate cancer , 2008, Nature Genetics.
[7] Ali Amin Al Olama,et al. Multiple newly identified loci associated with prostate cancer susceptibility , 2008, Nature Genetics.
[8] W. Willett,et al. Multiple loci identified in a genome-wide association study of prostate cancer , 2008, Nature Genetics.
[9] Yu Cheng,et al. Association between two unlinked loci at 8q24 and prostate cancer risk among European Americans. , 2007, Journal of the National Cancer Institute.
[10] D. Gudbjartsson,et al. Two variants on chromosome 17 confer prostate cancer risk, and the one in TCF2 protects against type 2 diabetes , 2007, Nature Genetics.
[11] P. Donnelly,et al. A new multipoint method for genome-wide association studies by imputation of genotypes , 2007, Nature Genetics.
[12] D. Gudbjartsson,et al. Genome-wide association study identifies a second prostate cancer susceptibility variant at 8q24 , 2007, Nature Genetics.
[13] A. Whittemore,et al. Multiple regions within 8q24 independently affect risk for prostate cancer , 2007, Nature Genetics.
[14] A. Gylfason,et al. A common variant associated with prostate cancer in European and African populations , 2006, Nature Genetics.
[15] A. Saiardi,et al. Inositol pyrophosphates: metabolism and signaling , 2006, Cellular and Molecular Life Sciences.
[16] C. Chauvin,et al. Involvement of Human Release Factors eRF3a and eRF3b in Translation Termination and Regulation of the Termination Complex Formation , 2005, Molecular and Cellular Biology.
[17] Mark Daly,et al. Haploview: analysis and visualization of LD and haplotype maps , 2005, Bioinform..
[18] L. D. Barnes,et al. An Adjacent Pair of Human NUDT Genes on Chromosome X Are Preferentially Expressed in Testis and Encode Two New Isoforms of Diphosphoinositol Polyphosphate Phosphohydrolase* , 2002, The Journal of Biological Chemistry.
[19] S. Gabriel,et al. The Structure of Haplotype Blocks in the Human Genome , 2002, Science.
[20] P. Barker,et al. The MAGE proteins: Emerging roles in cell cycle progression, apoptosis, and neurogenetic disease , 2002, Journal of neuroscience research.
[21] J. Carpten,et al. Linkage and association studies of prostate cancer susceptibility: evidence for linkage at 8p22-23. , 2001, American journal of human genetics.
[22] D. Frick,et al. The MutT Proteins or “Nudix” Hydrolases, a Family of Versatile, Widely Distributed, “Housecleaning” Enzymes* , 1996, The Journal of Biological Chemistry.
[23] Xin Xu,et al. Implementing a unified approach to family‐based tests of association , 2000, Genetic epidemiology.