88 results on '"Abounader, Roger"'
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2. Supplementary Figure 1 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
3. Data from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
4. Supplementary Figure Legends 1-2 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
5. Supplementary Figure Legends 1-2 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
6. Supplementary Table 1 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
7. Supplementary Table 1 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
8. Supplementary Figure 1 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
9. Supplementary Figure 2 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
10. Supplementary Figure 2 from Cooperation between c-Met and Focal Adhesion Kinase Family Members in Medulloblastoma and Implications for Therapy
11. Supplementary Data from Combined CDK4/6 and mTOR Inhibition Is Synergistic against Glioblastoma via Multiple Mechanisms
12. Figure S1-S3 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
13. Data from Targetable T-type Calcium Channels Drive Glioblastoma
14. Figure S1-S3 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
15. Figure S11 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
16. Figure S4 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
17. Supplemental methods and materials from Targetable T-type Calcium Channels Drive Glioblastoma
18. Figure S5 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
19. Supplementary Methods from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
20. Figure S7-S10 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
21. Data from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
22. Supplementary Methods from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
23. Supplementary Table 1 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
24. Data from Combined c-Met/Trk Inhibition Overcomes Resistance to CDK4/6 Inhibitors in Glioblastoma
25. Supplementary figures 1-4 from Targetable T-type Calcium Channels Drive Glioblastoma
26. Supplementary Data from Combined CDK4/6 and mTOR Inhibition Is Synergistic against Glioblastoma via Multiple Mechanisms
27. Supplementary Figure 1 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
28. Figure S11 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
29. Figure S6 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
30. Supplementary Table 1 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
31. Supplementary figures 1-4 from Targetable T-type Calcium Channels Drive Glioblastoma
32. Figure S7-S10 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
33. Supplementary Table 2 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
34. Figure S5 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
35. Supplementary Data from Combined c-Met/Trk Inhibition Overcomes Resistance to CDK4/6 Inhibitors in Glioblastoma
36. Figure S4 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
37. Supplementary Table 2 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
38. Supplementary Figure 1 from Hepatocyte Growth Factor Sensitizes Brain Tumors to c-MET Kinase Inhibition
39. Supplementary Data from Combined c-Met/Trk Inhibition Overcomes Resistance to CDK4/6 Inhibitors in Glioblastoma
40. Supplementary materials from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
41. Data from Targetable T-type Calcium Channels Drive Glioblastoma
42. Data from Combined c-Met/Trk Inhibition Overcomes Resistance to CDK4/6 Inhibitors in Glioblastoma
43. Supplementary materials from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
44. Figure S6 from Mitochondrial NIX Promotes Tumor Survival in the Hypoxic Niche of Glioblastoma
45. Supplementary Data 1 from PTEN Has Tumor-Promoting Properties in the Setting of Gain-of-Function p53 Mutations
46. Data from PTEN Has Tumor-Promoting Properties in the Setting of Gain-of-Function p53 Mutations
47. Data from microRNA-148a Is a Prognostic oncomiR That Targets MIG6 and BIM to Regulate EGFR and Apoptosis in Glioblastoma
48. Data from PTEN Has Tumor-Promoting Properties in the Setting of Gain-of-Function p53 Mutations
49. Supplementary Figure Legends from microRNA-148a Is a Prognostic oncomiR That Targets MIG6 and BIM to Regulate EGFR and Apoptosis in Glioblastoma
50. Supplementary Figure 5 from microRNA-148a Is a Prognostic oncomiR That Targets MIG6 and BIM to Regulate EGFR and Apoptosis in Glioblastoma
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