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1. Detection of early-stage lung cancer in sputum using automated flow cytometry and machine learning

2. A chromosome-level genome of Astyanax mexicanus surface fish for comparing population-specific genetic differences contributing to trait evolution

3. Macrophages directly contribute collagen to scar formation during zebrafish heart regeneration and mouse heart repair

4. Discordant Genome Assemblies Drastically Alter the Interpretation of Single-Cell RNA Sequencing Data Which Can Be Mitigated by a Novel Integration Method

5. Mediator Kinase Phosphorylation of STAT1 S727 Promotes Growth of Neoplasms With JAK-STAT Activation

6. Constitutive Ras signaling and Ink4a/Arf inactivation cooperate during the development of B-ALL in mice

7. Heart Regeneration in the Mexican Cavefish

8. Glioblastoma Inhibition by Cell Surface Immunoglobulin Protein EWI-2, In Vitro and In Vivo

9. Inhibition of Eicosanoid Degradation Mitigates Fibrosis of the Heart

10. Supplementary Figure Legends from Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

11. Supplementary Figures 1-4 from Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

12. Data from Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

13. Supplementary Methods from Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

14. Data from Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

15. Supplementary Tables 1-3 from Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

16. Supplementary Figure 2 from NSD3–NUT Fusion Oncoprotein in NUT Midline Carcinoma: Implications for a Novel Oncogenic Mechanism

17. Supplemental Figures 1-9 from Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

18. Supplemental Figures from Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

19. Supplementary Methods from Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

20. Supplementary Figure 4 from NSD3–NUT Fusion Oncoprotein in NUT Midline Carcinoma: Implications for a Novel Oncogenic Mechanism

21. Supplementary Figure 3 from NSD3–NUT Fusion Oncoprotein in NUT Midline Carcinoma: Implications for a Novel Oncogenic Mechanism

22. Table S1 from Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

23. Supplementary Figure 1 from NSD3–NUT Fusion Oncoprotein in NUT Midline Carcinoma: Implications for a Novel Oncogenic Mechanism

24. Data from High-throughput Chemical Screening Identifies Focal Adhesion Kinase and Aurora Kinase B Inhibition as a Synergistic Treatment Combination in Ewing Sarcoma

25. Supplemental Table S7 from High-throughput Chemical Screening Identifies Focal Adhesion Kinase and Aurora Kinase B Inhibition as a Synergistic Treatment Combination in Ewing Sarcoma

26. Supplementary Data from High-throughput Chemical Screening Identifies Focal Adhesion Kinase and Aurora Kinase B Inhibition as a Synergistic Treatment Combination in Ewing Sarcoma

27. Supplementary Figures 1-2 from Differentiation of NUT Midline Carcinoma by Epigenomic Reprogramming

28. Data from Differentiation of NUT Midline Carcinoma by Epigenomic Reprogramming

29. Matrix-Degrading Enzyme Expression and Aortic Fibrosis During Continuous-Flow Left Ventricular Mechanical Support

30. Chemical Screen Identifies Diverse and Novel Histone Deacetylase Inhibitors as Repressors of NUT Function: Implications for NUT Carcinoma Pathogenesis and Treatment

31. GATA6 regulates aging of human mesenchymal stem/stromal cells

32. Combined Targeting of the BRD4–NUT–p300 Axis in NUT Midline Carcinoma by Dual Selective Bromodomain Inhibitor, NEO2734

33. BPTF regulates growth of adult and pediatric high-grade glioma through the MYC pathway

34. Dynamic Chromatin Targeting of BRD4 Stimulates Cardiac Fibroblast Activation

35. Monocytes transition to macrophages within the inflamed vasculature via monocyte CCR2 and endothelial TNFR2

36. Hyperglycemia Induces Trained Immunity in Macrophages and Their Precursors and Promotes Atherosclerosis

38. IER5, a DNA damage response gene, is required for Notch-mediated induction of squamous cell differentiation

39. BET bromodomain proteins regulate transcriptional reprogramming in genetic dilated cardiomyopathy

40. A chromosome level genome ofAstyanax mexicanussurface fish for comparing population-specific genetic differences contributing to trait evolution

41. IER5, a DNA-damage response gene, is required for Notch-mediated induction of squamous cell differentiation

42. Macrophages directly contribute collagen to scar formation during zebrafish heart regeneration and mouse heart repair

43. Comparing and Contrasting the Effects of Drosophila Condensin II Subunit dCAP-D3 Overexpression and Depletion in Vivo

44. Constitutive Ras signaling and Ink4a/Arf inactivation cooperate during the development of B-ALL in mice

45. Author response: Obesity-linked suppression of membrane-bound O-acyltransferase 7 (MBOAT7) drives non-alcoholic fatty liver disease

46. Obesity-linked suppression of membrane-bound O-acyltransferase 7 (MBOAT7) drives non-alcoholic fatty liver disease

47. Dynamic chromatin targeting of BRD4 stimulates cardiac fibroblast activation

48. Condensin II protein dysfunction impacts mitochondrial respiration and stress response

49. Correction: BPTF regulates growth of adult and pediatric high-grade glioma through the MYC pathway

50. Mediator kinase inhibition further activates super-enhancer-associated genes in AML

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