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1. Transposon Mutagenesis Reveals RBMS3 Silencing as a Promoter of Malignant Progression of BRAFV600E-Driven Lung Tumorigenesis

5. A Forward Genetic Screen Targeting the Endothelium Reveals a Regulatory Role for the Lipid Kinase Pi4ka in Myelo- and Erythropoiesis

7. Single allele loss-of-function mutations select and sculpt conditional cooperative networks in breast cancer

9. Clonal selection drives genetic divergence of metastatic medulloblastoma.

12. Mammalian Germ-Line Transgenesis by Transposition

22. Supplementary Data from Transposon Mutagenesis Reveals RBMS3 Silencing as a Promoter of Malignant Progression of BRAFV600E-Driven Lung Tumorigenesis

23. Supplementary Methods and References from A Transposon-based Analysis Reveals RASA1 Is Involved in Triple-Negative Breast Cancer

24. Supplementary Tables S7-18 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

25. Supplementary Tables S1-6 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

26. Supplementary Tables S1-S7 from A Transposon-based Analysis Reveals RASA1 Is Involved in Triple-Negative Breast Cancer

27. Data from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

28. Data from Src-Dependent DBL Family Members Drive Resistance to Vemurafenib in Human Melanoma

29. Supplemental Tables from Src-Dependent DBL Family Members Drive Resistance to Vemurafenib in Human Melanoma

30. Supplementary Figures S1 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

31. Supplementary Figures S2-4 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

33. Data from Transposon Mutagenesis Reveals RBMS3 Silencing as a Promoter of Malignant Progression of BRAFV600E-Driven Lung Tumorigenesis

34. Supplementary Figures S11-13 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

35. Supplementary Figures S5-7 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

36. Supplementary Figures 9-10 from Sleeping Beauty Insertional Mutagenesis in Mice Identifies Drivers of Steatosis-Associated Hepatic Tumors

37. Supplementary Data from Src-Dependent DBL Family Members Drive Resistance to Vemurafenib in Human Melanoma

38. Data from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

42. Supplementary Table 3 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

43. Supplementary Figure 2 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

44. Supplementary Table 2 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

47. Supplementary Table 1 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

49. Supplementary Figure 1 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

50. Supplementary Table 4 from Whole-Body Sleeping Beauty Mutagenesis Can Cause Penetrant Leukemia/Lymphoma and Rare High-Grade Glioma without Associated Embryonic Lethality

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