516 results on '"Trock, Bruce"'
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3. MP33-12 INDUSTRY PAYMENTS TO UROLOGISTS IN 2022: DESCRIPTIVE ANALYSIS OF THE OPEN PAYMENTS PROGRAM DATABASE
4. MP16-14 A PHASE II TRIAL OF INTRAVESICAL GEMCITABINE AND DOCETAXEL (GEMDOCE) IN THE TREATMENT OF BCG-NAÏVE NON-MUSCLE INVASIVE UROTHELIAL CARCINOMA OF THE BLADDER
5. PD26-06 ASSOCIATION BETWEEN DIET AND NUTRIENT INTAKE AND UPGRADING IN MEN WITH PROSTATE CANCER ON ACTIVE SURVEILLANCE
6. A Phase II Trial of Intravesical Gemcitabine and Docetaxel in the Treatment of Bacillus Calmette-Guérin‒Naïve Nonmuscle-Invasive Urothelial Carcinoma of the Bladder
7. Multi-institutional Analysis of Metastasis-directed Therapy with or Without Androgen Deprivation Therapy in Oligometastatic Castration-sensitive Prostate Cancer
8. ASSOCIATION BETWEEN DIETARY NUTRIENTS AND INFLAMMATORY POTENTIAL AND BIOPSY UPGRADING IN MEN WITH PROSTATE CANCER ON ACTIVE SURVEILLANCE
9. ERAS FOR AMBULATORY TURBT: ENHANCING BLADDER CANCER CARE (EMBRACE) RANDOMIZED CONTROLLED TRIAL
10. Correction to: The Association of Subspecialty and Sex with Industry Payments to Internal Medicine Physicians Who Recently Completed Training
11. LSD1 inhibition suppresses ASCL1 and de-represses YAP1 to drive potent activity against neuroendocrine prostate cancer
12. Immunomodulatory response to neoadjuvant nivolumab in non-metastatic clear cell renal cell carcinoma
13. Reply by Authors
14. Likelihood of sampling prostate cancer at systematic biopsy as a function of gland volume and number of cores
15. Baseline prostate health index risk category and risk category changes during active surveillance predict grade reclassification
16. Characterization of HOXB13 expression patterns in localized and metastatic castration‐resistant prostate cancer
17. Industry Payments Received by Residents During Training
18. Development and External Validation of a Machine Learning Model for Prediction of Lymph Node Metastasis in Patients with Prostate Cancer
19. The Association of Subspecialty and Sex with Industry Payments to Internal Medicine Physicians Who Recently Completed Training
20. Human C1q Tumor Necrosis Factor 8 (CTRP8) defines a novel tryptase+ mast cell subpopulation in the prostate cancer microenvironment
21. Development and Validation of MyProstateScore 2.0 to Detect Clinically Significant Prostate Cancer
22. Trainee Physician Milestone Ratings and Patient Complaints in Early Posttraining Practice
23. Supplementary Table 2C from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
24. Supplementary Table 6 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
25. Supplementary Figure 1D from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
26. Data from Development and Application of a Novel Model System to Study “Active” and “Passive” Tumor Targeting
27. Supplementary Table 4 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
28. Supplementary Figure 2C from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
29. Supplementary Table 1 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
30. Supplementary Figure 5B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
31. Supplementary Figure 3C from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
32. Data from Development and Application of a Novel Model System to Study “Active” and “Passive” Tumor Targeting
33. Supplementary Figure 1B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
34. Supplementary Table 8 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
35. Supplementary Table 8 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
36. Supplementary Figure 2B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
37. Supplementary Table 3 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
38. Supplementary Information from Development and Application of a Novel Model System to Study “Active” and “Passive” Tumor Targeting
39. Supplementary Figure 3B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
40. Supplementary Information from Development and Application of a Novel Model System to Study “Active” and “Passive” Tumor Targeting
41. Supplementary Table 2C from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
42. Supplementary Table 2B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
43. Supplementary Table 2B from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
44. Supplementary Figure 4 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
45. Supplementary Figure 5A from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
46. Supplementary Figure 1A from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
47. Supplementary Table 2A from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
48. Supplementary Table 1 from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
49. Supplemental Experimental Procedures from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
50. Supplementary Figure 3A from Molecular Triage of Premalignant Lesions in Liquid-Based Cervical Cytology and Circulating Cell-Free DNA from Urine, Using a Panel of Methylated Human Papilloma Virus and Host Genes
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