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2. Impact of Transcript (p16/p14ARF) Alteration on Cancer Risk in CDKN2A Germline Pathogenic Variant Carriers.

3. Discovery of novel predisposing coding and noncoding variants in familial Hodgkin lymphoma

4. Targeted long-read sequencing of the Ewing sarcoma 6p25.1 susceptibility locus identifies germline-somatic interactions with EWSR1-FLI1 binding

5. Novel MAPK/AKT-impairing germline NRAS variant identified in a melanoma-prone family

10. Epidemiology of Melanocytic Neoplasia

12. Genome-wide association study confirms lung cancer susceptibility loci on chromosomes 5p15 and 15q25 in an African-American population

13. Genome-wide scan of 29,141 African Americans finds no evidence of selection since admixture

14. Genome-wide association meta-analyses combining multiple risk phenotypes provide insights into the genetic architecture of cutaneous melanoma susceptibility

15. Two susceptibility loci identified for prostate cancer aggressiveness.

17. Enhancing Career Paths for Tomorrow's Radiation Oncologists

18. Gene-Level Associations in Patients With and Without Pathogenic Germline Variants in CDKN2A and Pancreatic Cancer

19. Genome-wide scan of 29,141 African Americans finds no evidence of directional selection since admixture.

20. Estimated Prevalence, Tumor Spectrum, and Neurofibromatosis Type 1–Like Phenotype of CDKN2A-Related Melanoma-Astrocytoma Syndrome

24. Germline Variation at CDKN2A and Associations with Nevus Phenotypes among Members of Melanoma Families

25. The landscape of recombination in African Americans

26. Breast Cancer Risks for BRCA1/2 Carriers

28. Reply to ‘Mosaic loss of chromosome Y in leukocytes matters’

29. What Angels Can Teach Us About Being Human

30. Why Jesus Movies Should be Strange

34. Data from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

35. Supplementary Table 3 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

37. Supplementary Table 1 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

38. Supplementary Table 6 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

39. Supplementary Table 5 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

40. Supplementary Figures 1 - 11 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

41. Supplementary Table 2 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

42. Supplementary Table 4 from A Genome-Wide Scan Identifies Variants in NFIB Associated with Metastasis in Patients with Osteosarcoma

43. Data from MicroRNA Expression Differentiates Histology and Predicts Survival of Lung Cancer

44. Supplementary Table 3 from Refining the Prostate Cancer Genetic Association within the JAZF1 Gene on Chromosome 7p15.2

45. Supplementary Figure 1 from Pooling Prospective Studies to Investigate the Etiology of Second Cancers

46. Supplementary Table 2A from Refining the Prostate Cancer Genetic Association within the JAZF1 Gene on Chromosome 7p15.2

47. Data from Pooling Prospective Studies to Investigate the Etiology of Second Cancers

48. Supplementary Table 1 from Refining the Prostate Cancer Genetic Association within the JAZF1 Gene on Chromosome 7p15.2

49. Supplementary Table Legends from Refining the Prostate Cancer Genetic Association within the JAZF1 Gene on Chromosome 7p15.2

50. Data from Refining the Prostate Cancer Genetic Association within the JAZF1 Gene on Chromosome 7p15.2

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