76 results on '"Peehl, Donna M."'
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2. Supplementary Figure 1B from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
3. Supplementary Figures 1 - 9 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
4. Supplementary Tables 1-3, Figure Legends 1-2 from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
5. Data from S100A10 Is a Critical Mediator of GAS6/AXL–Induced Angiogenesis in Renal Cell Carcinoma
6. Supplementary Figure 2B from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
7. Supplementary Table 1 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
8. Supplementary Figure 2B from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
9. Supplementary Figure 2A from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
10. Figure S5 from S100A10 Is a Critical Mediator of GAS6/AXL–Induced Angiogenesis in Renal Cell Carcinoma
11. Supplementary Table 4 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
12. Supplementary Table 2 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
13. Supplementary Figures 1 - 9 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
14. Supplementary Table 3 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
15. Supplementary Figure 2A from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
16. Supplementary Figure Legend from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
17. Supplementary Figure Legend from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
18. Supplementary Table 2 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
19. Supplementary Table 1 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
20. Supplementary Figure 1B from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
21. Supplementary Figure 1A from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
22. Supplementary Tables from S100A10 Is a Critical Mediator of GAS6/AXL–Induced Angiogenesis in Renal Cell Carcinoma
23. Supplementary Table 3 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
24. Supplementary Tables 1-3, Figure Legends 1-2 from Integrated Analysis Reveals Critical Genomic Regions in Prostate Tumor Microenvironment Associated with Clinicopathologic Phenotypes
25. Supplementary Table 4 from Darinaparsin: Solid Tumor Hypoxic Cytotoxin and Radiosensitizer
26. Data from Topology of NGEP, a Prostate-Specific Cell:Cell Junction Protein Widely Expressed in Many Cancers of Different Grade Level
27. Data from Suppression of Tak1 Promotes Prostate Tumorigenesis
28. Data from Topology of NGEP, a Prostate-Specific Cell:Cell Junction Protein Widely Expressed in Many Cancers of Different Grade Level
29. Data from Hepcidin Regulation in Prostate and Its Disruption in Prostate Cancer
30. Supplementary Figure 6 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
31. Supplemental Figure Legend from Hepcidin Regulation in Prostate and Its Disruption in Prostate Cancer
32. Supplementary Figure 3 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
33. Data from Suppression of Tak1 Promotes Prostate Tumorigenesis
34. Supplemental Methods and References from Hepcidin Regulation in Prostate and Its Disruption in Prostate Cancer
35. Supplementary Figure 1 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
36. Supplementary Figure 4 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
37. Supplementary Figure 2 from Suppression of Tak1 Promotes Prostate Tumorigenesis
38. Supplementary Figure 1 from Suppression of Tak1 Promotes Prostate Tumorigenesis
39. Data from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
40. Supplementary Figure 6 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
41. Supplementary Figure 5 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
42. Supplementary Figure 3 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
43. Supplementary Methods, Legends for Tables 1-2, Figures 1-4 from Suppression of Tak1 Promotes Prostate Tumorigenesis
44. Supplementary Table 2 from Suppression of Tak1 Promotes Prostate Tumorigenesis
45. Supplementary Figure 4 from Suppression of Tak1 Promotes Prostate Tumorigenesis
46. Supplementary Figure 4 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
47. Supplemental Figures S1-S7 from Hepcidin Regulation in Prostate and Its Disruption in Prostate Cancer
48. Supplementary Figure 4 from Suppression of Tak1 Promotes Prostate Tumorigenesis
49. Supplementary Figure 1 from Centrosomal PKCβII and Pericentrin Are Critical for Human Prostate Cancer Growth and Angiogenesis
50. Supplementary Methods, Legends for Tables 1-2, Figures 1-4 from Suppression of Tak1 Promotes Prostate Tumorigenesis
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