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1. Master transcription factors form interconnected circuitry and orchestrate transcriptional networks in oesophageal adenocarcinoma

4. Establishing mouse and human oral esophageal organoids to investigate the tumor immune response

9. Interplay and cooperation between SREBF1 and master transcription factors regulate lipid metabolism and tumor-promoting pathways in squamous cancer

11. Super-Enhancer-Driven Long Non-Coding RNA LINC01503, Regulated by TP63, Is Over-Expressed and Oncogenic in Squamous Cell Carcinoma

14. Radiofrequency Ablation of Barrett's Esophagus Reduces Esophageal Adenocarcinoma Incidence and Mortality in a Comparative Modeling Analysis

18. Targeting the Hedgehog Pathway Using Itraconazole to Prevent Progression of Barrettʼs Esophagus to Invasive Esophageal Adenocarcinoma

20. Supplementary Table-S3 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

21. Supplementary Fig. 13 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

22. Supplementary Table S1 from Hypermethylation of Tachykinin-1 Is a Potential Biomarker in Human Esophageal Cancer

23. Supplementary Fig. 4 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

24. Supplementary Figures 1-4 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

25. Supplementary Fig. 6 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

26. Supplementary Fig. 7 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

27. Supplementary Fig. 9 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

28. Supplementary Table 5 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

29. Supplementary Tables S1 & S2 from Reprimo Methylation Is a Potential Biomarker of Barrett's-Associated Esophageal Neoplastic Progression

30. Supplementary Fig. 8 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

31. Supplementary Data from Methylation Biomarker Panel Performance in EsophaCap Cytology Samples for Diagnosing Barrett's Esophagus: A Prospective Validation Study

32. Supplementary Data from Evaluation of Salivary Exosomal Chimeric GOLM1-NAA35 RNA as a Potential Biomarker in Esophageal Carcinoma

33. CCR Translation for This Article from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

34. Supplementary Table 4 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

35. Supplementary Table 3 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

36. Supplementary Table 2 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

37. Supplementary Fig. 3 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

38. Supplementary Table 1 from Colorectal Cancers with Microsatellite Instability Display Unique miRNA Profiles

39. Supplementary Figure S1 from Reprimo Methylation Is a Potential Biomarker of Barrett's-Associated Esophageal Neoplastic Progression

40. Supplementary Fig. 2 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

41. Supplementary Fig. 5 from EpiPanGI Dx: A Cell-free DNA Methylation Fingerprint for the Early Detection of Gastrointestinal Cancers

42. Supplementary Table 1 from A Multicenter, Double-Blinded Validation Study of Methylation Biomarkers for Progression Prediction in Barrett's Esophagus

43. Supplementary Table 1 from Activin Type II Receptor Restoration in ACVR2-Deficient Colon Cancer Cells Induces Transforming Growth Factor-β Response Pathway Genes

44. Supplementary Figure 1 Legend from Activin Type II Receptor Restoration in ACVR2-Deficient Colon Cancer Cells Induces Transforming Growth Factor-β Response Pathway Genes

46. Supplementary Table 3 from A Multicenter, Double-Blinded Validation Study of Methylation Biomarkers for Progression Prediction in Barrett's Esophagus

48. Data from Activin Type II Receptor Restoration in ACVR2-Deficient Colon Cancer Cells Induces Transforming Growth Factor-β Response Pathway Genes

49. Supplementary Figure 2 from A Multicenter, Double-Blinded Validation Study of Methylation Biomarkers for Progression Prediction in Barrett's Esophagus

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