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1. Quantifying intra-tumoral genetic heterogeneity of glioblastoma toward precision medicine using MRI and a data-inclusive machine learning algorithm

2. Table S1 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

3. Supp Figures from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

4. Table S6 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

5. Table S3 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

6. Table S1 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

7. Table S6 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

8. Table S5 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

9. Supplemental Figures Legends from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

10. Data from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

11. Table S2 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

12. Supp Figures from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

13. Supplemental Figures Legends from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

14. Table S5 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

15. Table S4 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

16. Supplementary Appendix from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

17. Data from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

18. Table S4 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

19. Supplementary Appendix from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

20. Table S2 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

21. Table S3 from The Epigenetic Evolution of Glioma Is Determined by the IDH1 Mutation Status and Treatment Regimen

22. The epigenetic evolution of glioma is determined by the IDH1 mutation status and treatment regimen

24. EPCO-27. RECONSTRUCTION OF THE SPATIAL ECOSYSTEM OF GLIOBLASTOMA REVEALS RECURRENT RELATIONSHIPS BETWEEN TUMOR CELL STATES AND TUMOR MICROENVIRONMENT

25. EPCO-37. DISSECTING GBM EVOLUTION FOLLOWING STANDARD-OF-CARE BY LARGE-SCALE LONGITUDINAL SINGLE NUCLEUS RNA-SEQUENCING

26. EPCO-09. CHARACTERIZING THE GBM CELLULAR LANDSCAPE BY LARGE-SCALE SINGLE-NUCLEUS RNA-SEQUENCING

27. Integrated molecular and multiparametric MRI mapping of high-grade glioma identifies regional biologic signatures

28. Supplementary Tables S1-S3 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

29. Supplementary Figure S1. from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

30. Supplementary Figure S7 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

31. Supplementary Figure S3 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

32. Abstract 5621: Multi-parametric MRI maps regional heterogeneity of high grade glioma phenotypes

33. Supplementary Figure S2 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

34. Supplementary Figure S5 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

35. Supplementary Figure S4 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

36. Supplementary Tables S1-S3 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

37. Supplementary Figure S3 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

38. Data from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

39. Abstract 1507: Multiregional sampling of high grade glioma identifies regional biologic signatures

40. Supplementary Figure S2 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

41. Data from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

42. Supplementary Figure S1. from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

43. Supplementary Figure S6 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

44. Supplementary Figure S5 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

45. Supplementary Figure S7 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

46. Supplementary Figure S8 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

47. Supplementary Figure S6 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

48. Supplementary Figure S4 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

49. Supplementary Figure S8 from LZTR1 Mutation Mediates Oncogenesis through Stabilization of EGFR and AXL

50. Supplementary Figures 1-9 from Centrosome Linker–induced Tetraploid Segregation Errors Link Rhabdoid Phenotypes and Lethal Colorectal Cancers

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