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1. Erectile function preservation after salvage radiation therapy for biochemically recurrent prostate cancer after prostatectomy: Five-year results of the SAKK 09/10 randomized phase 3 trial

2. Exploring the intratumoral heterogeneity of DNA ploidy in prostate cancer

3. Bladder cancer organoids as a functional system to model different disease stages and therapy response

4. Diagnostic Value of Urine Cytology in Pharmacologically Forced Diuresis for Upper Tract Urothelial Carcinoma Diagnosis and Follow-Up

5. Prediction of Biochemical Recurrence Based on Molecular Detection of Lymph Node Metastasis After Radical Prostatectomy

6. Distended Seminal Vesicles Are Involved in Specific Cerebral Sexual Arousal: A Pilot Study Using Functional Brain Imaging in Young Healthy Men

7. Functional Impact of Neuro-Vascular Bundle Preservation in High Risk Prostate Cancer without Compromising Oncological Outcomes: A Propensity-Modelled Analysis

8. Lymphovascular Invasion at the Time of Radical Prostatectomy Adversely Impacts Oncological Outcomes

9. Patient-derived xenografts and organoids model therapy response in prostate cancer

10. Preoperative plasma fatty acid metabolites inform risk of prostate cancer progression and may be used for personalized patient stratification

11. miR-221-5p regulates proliferation and migration in human prostate cancer cells and reduces tumor growth in vivo

12. Corrigendum: Dual-mTOR Inhibitor Rapalink-1 Reduces Prostate Cancer Patient-Derived Xenograft Growth and Alters Tumor Heterogeneity

13. Dual-mTOR Inhibitor Rapalink-1 Reduces Prostate Cancer Patient-Derived Xenograft Growth and Alters Tumor Heterogeneity

14. Disease Control With Delayed Salvage Radiotherapy for Macroscopic Local Recurrence Following Radical Prostatectomy

15. Stroma Transcriptomic and Proteomic Profile of Prostate Cancer Metastasis Xenograft Models Reveals Prognostic Value of Stroma Signatures

16. Evolution of Urothelial Bladder Cancer in the Context of Molecular Classifications

17. The Role of Cancer-Associated Fibroblasts in Prostate Cancer Tumorigenesis

18. ALK1Fc Suppresses the Human Prostate Cancer Growth in in Vitro and in Vivo Preclinical Models

19. Therapy-related longitudinal brain perfusion changes in patients with chronic pelvic pain syndrome

20. Neuroendocrine Differentiation in Metastatic Conventional Prostate Cancer Is Significantly Increased in Lymph Node Metastases Compared to the Primary Tumors

22. Lunar Tractive Forces and Renal Stone Incidence

25. Mapping European Association of Urology Guideline Practice Across Europe: An Audit of Androgen Deprivation Therapy Use Before Prostate Cancer Surgery in 6598 Cases in 187 Hospitals Across 31 European Countries

28. Supplementary Figures 1-7 from Therapeutic Targeting of CD146/MCAM Reduces Bone Metastasis in Prostate Cancer

29. Data from Therapeutic Targeting of CD146/MCAM Reduces Bone Metastasis in Prostate Cancer

32. Supplementary Data from Divergent Biological Response to Neoadjuvant Chemotherapy in Muscle-invasive Bladder Cancer

33. Data from Divergent Biological Response to Neoadjuvant Chemotherapy in Muscle-invasive Bladder Cancer

34. Supplementary Figure 2 from Characterization and Clinical Relevance of ALDHbright Populations in Prostate Cancer

35. Supplementary Table 2 from Characterization and Clinical Relevance of ALDHbright Populations in Prostate Cancer

39. Data from Characterization and Clinical Relevance of ALDHbright Populations in Prostate Cancer

40. Supplementary Methods from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

41. Supplementary Figures 1-4 from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

42. Supplementary Figure 6 from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

43. Supplementary Figure Legends 1-6 from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

44. Supplementary Figures 1 - 9 from ETS Transcription Factor ESE1/ELF3 Orchestrates a Positive Feedback Loop That Constitutively Activates NF-κB and Drives Prostate Cancer Progression

45. Supplementary Tables 1-4 from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

46. Supplementary Table 1 from ETS Transcription Factor ESE1/ELF3 Orchestrates a Positive Feedback Loop That Constitutively Activates NF-κB and Drives Prostate Cancer Progression

47. Supplementary Table 2 from ETS Transcription Factor ESE1/ELF3 Orchestrates a Positive Feedback Loop That Constitutively Activates NF-κB and Drives Prostate Cancer Progression

48. Data from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

49. Supplementary Methods from ETS Transcription Factor ESE1/ELF3 Orchestrates a Positive Feedback Loop That Constitutively Activates NF-κB and Drives Prostate Cancer Progression

50. Supplementary Figure 5 from High Aldehyde Dehydrogenase Activity Identifies Tumor-Initiating and Metastasis-Initiating Cells in Human Prostate Cancer

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