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1. Understanding the function of Pax5 in development of docetaxel-resistant neuroendocrine-like prostate cancers.

2. GD2 and its biosynthetic enzyme GD3 synthase promote tumorigenesis in prostate cancer by regulating cancer stem cell behavior

4. Pathology Data-Based Risk Group Stratification Is Equivalent to That Obtained by Oncotype DX Testing in Prostatic Adenocarcinoma

5. Unusual Clinical Presentation of Clear Cell Sarcoma in a Young Woman

8. A Rare Case of Giant Cystic Adenomatoid Tumor of the Uterus With Literature Review.

11. Pancreatic Tumor Microenvironment Factor Promotes Cancer Stemness via SPP1–CD44 Axis

16. Selective inhibition of stemness through EGFR/FOXA2/SOX9 axis reduces pancreatic cancer metastasis

17. Metabolic programming of distinct cancer stem cells promotes metastasis of pancreatic ductal adenocarcinoma

18. Understanding the role of Pax5 in development of taxane-resistant neuroendocrine like prostate cancers

19. Cancer-associated Fibroblast Induces Acinar-to-ductal Cell Transdifferentiation and Pancreatic Cancer Initiation via LAMA5/ITGA4 axis

22. Cigarette Smoke Induces Stem Cell Features of Pancreatic Cancer Cells via PAF1

25. Initial experience with an electron FLASH research extension (FLEX) for the Clinac system.

28. Supplementary Data from Ecdysoneless Overexpression Drives Mammary Tumorigenesis through Upregulation of C-MYC and Glucose Metabolism

29. Data from Ecdysoneless Overexpression Drives Mammary Tumorigenesis through Upregulation of C-MYC and Glucose Metabolism

30. Initial experience with an electron FLASH research extension (FLEX) for the Clinac system

33. Supplementary Figure 11 from PGC1α-Mediated Metabolic Reprogramming Drives the Stemness of Pancreatic Precursor Lesions

34. Supplementary Table 4 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

35. Supplementary Revised Figure S3 from MUC16 Regulates TSPYL5 for Lung Cancer Cell Growth and Chemoresistance by Suppressing p53

36. Supplementary Figure Legend from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

37. Supplementary Figure 1 from Targeting the NF-κB and mTOR Pathways with a Quinoxaline Urea Analog That Inhibits IKKβ for Pancreas Cancer Therapy

38. Supplementary Table 2 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

39. Supplementary Figure 4 from PGC1α-Mediated Metabolic Reprogramming Drives the Stemness of Pancreatic Precursor Lesions

40. Supplementary Table 5 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

41. Data from MUC16 Regulates TSPYL5 for Lung Cancer Cell Growth and Chemoresistance by Suppressing p53

42. Supplementary Information from MUC4-Mediated Regulation of Acute Phase Protein Lipocalin 2 through HER2/AKT/NF-κB Signaling in Pancreatic Cancer

43. Supplementary Table 1 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

44. Supplementary Fig. 2 from MUC4-Mediated Regulation of Acute Phase Protein Lipocalin 2 through HER2/AKT/NF-κB Signaling in Pancreatic Cancer

45. Supplementary Figure 3 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

46. Supplementary Figure 5 from PGC1α-Mediated Metabolic Reprogramming Drives the Stemness of Pancreatic Precursor Lesions

47. Supplementary Figure 8 from PGC1α-Mediated Metabolic Reprogramming Drives the Stemness of Pancreatic Precursor Lesions

48. Supplementary Fig. 3 from MUC4-Mediated Regulation of Acute Phase Protein Lipocalin 2 through HER2/AKT/NF-κB Signaling in Pancreatic Cancer

49. Supplementary Figure 2 from PGC1α-Mediated Metabolic Reprogramming Drives the Stemness of Pancreatic Precursor Lesions

50. Supplementary Figure 2 from Overexpression of Ecdysoneless in Pancreatic Cancer and Its Role in Oncogenesis by Regulating Glycolysis

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