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1. LIFR inhibition enhances the therapeutic efficacy of HDAC inhibitors in triple negative breast cancer

2. Targeting ESR1 mutation–induced transcriptional addiction in breast cancer with BET inhibition

3. Targeting radioresistance and replication fork stability in prostate cancer

4. Dose-Intensified Stereotactic Ablative Radiation for Localized Prostate Cancer

5. Poly-glutamine-dependent self-association as a potential mechanism for regulation of androgen receptor activity

6. Estrogen receptor coregulator binding modulator (ERX-11) enhances the activity of CDK4/6 inhibitors against estrogen receptor-positive breast cancers

7. Discovery of a novel long noncoding RNA overlapping the LCK gene that regulates prostate cancer cell growth

8. Dynamic differences between DNA damage repair responses in primary tumors and cell lines

9. A patient‐derived explant (PDE) model of hormone‐dependent cancer

10. BRD4 Promotes DNA Repair and Mediates the Formation of TMPRSS2-ERG Gene Rearrangements in Prostate Cancer

11. Truncation and constitutive activation of the androgen receptor by diverse genomic rearrangements in prostate cancer

12. A Cellular Anatomy of the Normal Adult Human Prostate and Prostatic Urethra

13. A Structure—Activity Relationship Study of Bis-Benzamides as Inhibitors of Androgen Receptor—Coactivator Interaction

14. Incorporating Oxygen-Enhanced MRI into Multi-Parametric Assessment of Human Prostate Cancer

15. Lymphadenectomy in Management of Invasive Bladder Cancer

16. Abstract P6-10-14: Lysosomal acid lipase (LIPA) as a novel therapeutic vulnerability for treating TNBC

17. Emerging hormonal agents for the treatment of prostate cancer

19. Supplementary Figures 1-9 from Dual Roles of PARP-1 Promote Cancer Growth and Progression

20. Supplementary Figure 4 from Taxol Induces Brk-dependent Prosurvival Phenotypes in TNBC Cells through an AhR/GR/HIF–driven Signaling Axis

21. Supplementary Figure 3 from Taxol Induces Brk-dependent Prosurvival Phenotypes in TNBC Cells through an AhR/GR/HIF–driven Signaling Axis

22. Data from EC359: A First-in-Class Small-Molecule Inhibitor for Targeting Oncogenic LIFR Signaling in Triple-Negative Breast Cancer

24. Supplementary Figures S1-10 and Table S1 from EC359: A First-in-Class Small-Molecule Inhibitor for Targeting Oncogenic LIFR Signaling in Triple-Negative Breast Cancer

25. Supplementary Methods , Table 1 from Dual Roles of PARP-1 Promote Cancer Growth and Progression

26. Supplementary Figure 1 from Taxol Induces Brk-dependent Prosurvival Phenotypes in TNBC Cells through an AhR/GR/HIF–driven Signaling Axis

27. Supplementary Figure 2 from Taxol Induces Brk-dependent Prosurvival Phenotypes in TNBC Cells through an AhR/GR/HIF–driven Signaling Axis

28. Supplementary Methods from EC359: A First-in-Class Small-Molecule Inhibitor for Targeting Oncogenic LIFR Signaling in Triple-Negative Breast Cancer

31. Targeting LIPA independent of its lipase activity is a therapeutic strategy in solid tumors via induction of endoplasmic reticulum stress

32. Supplementary Figures from Targeting Bromodomain and Extra-Terminal (BET) Family Proteins in Castration-Resistant Prostate Cancer (CRPC)

33. Supplementary Figure 4 from Evidence for Efficacy of New Hsp90 Inhibitors Revealed by Ex Vivo Culture of Human Prostate Tumors

34. Supplementary Table from A First-in-Class Inhibitor of ER Coregulator PELP1 Targets ER+ Breast Cancer

35. Figure S1: Effect of treatment protocol on AR gene expression in C4-2 and LAPC4 cells from Disrupting Androgen Receptor Signaling Induces Snail-Mediated Epithelial–Mesenchymal Plasticity in Prostate Cancer

36. Figure S2 from Androgen Receptor Variants Mediate DNA Repair after Prostate Cancer Irradiation

37. Supplementary Methods from Targeting Bromodomain and Extra-Terminal (BET) Family Proteins in Castration-Resistant Prostate Cancer (CRPC)

38. Data from Androgen Receptor Variants Mediate DNA Repair after Prostate Cancer Irradiation

40. Data from Disrupting Androgen Receptor Signaling Induces Snail-Mediated Epithelial–Mesenchymal Plasticity in Prostate Cancer

41. Figure S2: Effect of treatment protocol on migration in PC3 and PC-3(AR)2 cells from Disrupting Androgen Receptor Signaling Induces Snail-Mediated Epithelial–Mesenchymal Plasticity in Prostate Cancer

42. Supplementary Data from A First-in-Class Inhibitor of ER Coregulator PELP1 Targets ER+ Breast Cancer

43. Supplementary Figure 2 from Evidence for Efficacy of New Hsp90 Inhibitors Revealed by Ex Vivo Culture of Human Prostate Tumors

44. Data from Targeting Bromodomain and Extra-Terminal (BET) Family Proteins in Castration-Resistant Prostate Cancer (CRPC)

45. Figure S5: Effect of androgen deprivation on EMP in xenografts from Disrupting Androgen Receptor Signaling Induces Snail-Mediated Epithelial–Mesenchymal Plasticity in Prostate Cancer

46. Supplementary Table 1 from Evidence for Efficacy of New Hsp90 Inhibitors Revealed by Ex Vivo Culture of Human Prostate Tumors

47. Figure Legends from Targeting Bromodomain and Extra-Terminal (BET) Family Proteins in Castration-Resistant Prostate Cancer (CRPC)

49. Supplementary Figure 1 from Evidence for Efficacy of New Hsp90 Inhibitors Revealed by Ex Vivo Culture of Human Prostate Tumors

50. Figure S4: Evaluation of AR variant binding to known AREs and Snail promoters from Disrupting Androgen Receptor Signaling Induces Snail-Mediated Epithelial–Mesenchymal Plasticity in Prostate Cancer

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