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1. A RORγt+ cell instructs gut microbiota-specific Treg cell differentiation

2. NUDT21 limits CD19 levels through alternative mRNA polyadenylation in B cell acute lymphoblastic leukemia

4. Oncogenic drivers dictate immune control of acute myeloid leukemia

5. Mechanisms of Resistance to Noncovalent Brutons Tyrosine Kinase Inhibitors.

7. An inflammatory state remodels the immune microenvironment and improves risk stratification in acute myeloid leukemia

8. A membrane-associated MHC-I inhibitory axis for cancer immune evasion

11. Deep Learning and Pathomics Analyses Reveal Cell Nuclei as Important Features for Mutation Prediction of BRAF-Mutated Melanomas

14. Author Correction: An inflammatory state remodels the immune microenvironment and improves risk stratification in acute myeloid leukemia

15. Publisher Correction: A RORγt+ cell instructs gut microbiota-specific Treg cell differentiation

18. Supplementary Methods from Mitophagy Promotes Resistance to BH3 Mimetics in Acute Myeloid Leukemia

19. Supplementary Figures 1-7 from Mitophagy Promotes Resistance to BH3 Mimetics in Acute Myeloid Leukemia

20. Flow cytometric assessment of leukemia-associated monocytes in childhood B-cell acute lymphoblastic leukemia outcome

21. A membrane-associated inhibitory axis of MHC-I presentation for cancer immune evasion

22. Abstract A20: Inflammation remodels the immune microenvironment in acute myeloid leukemia

23. Abstract A10: Targeting MHC-I antigen presentation for cancer immune evasion in acute myeloid leukemia

25. Mitophagy promotes resistance to BH3 mimetics in acute myeloid leukemia

28. Data from The Impact of Inflammation-Induced Tumor Plasticity during Myeloid Transformation

29. Supplementary Figure from The Impact of Inflammation-Induced Tumor Plasticity during Myeloid Transformation

30. Supplementary Data from The Impact of Inflammation-Induced Tumor Plasticity during Myeloid Transformation

31. Data from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

32. Supplementary Table 10 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

33. Supplementary Table S10 from BCL6 Antagonizes NOTCH2 to Maintain Survival of Human Follicular Lymphoma Cells

34. Supplementary Table 8 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

35. Supplementary Table 7 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

36. Supplementary Table 2 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

37. Supplementary Table 2 from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

38. Supplementary Methods, Figures 1 - 8, Table 5 from BCL6 Antagonizes NOTCH2 to Maintain Survival of Human Follicular Lymphoma Cells

39. Supplementary Table 1 from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

40. Data from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

41. Supplementary Table 6 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

42. Supplementary Table 9 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

43. Supplementary Table 4 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

44. Supplementary Figures and Figure Legends from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

45. Supplementary Table 5 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

46. Data from BCL6 Antagonizes NOTCH2 to Maintain Survival of Human Follicular Lymphoma Cells

47. Supplementary Figures S1-15 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

48. Supplementary Table 3 from Posttranslational Regulation of the Exon Skipping Machinery Controls Aberrant Splicing in Leukemia

49. Supplementary Tables and Methods from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

50. Supplementary Table 4 from Targeting Mitochondrial Structure Sensitizes Acute Myeloid Leukemia to Venetoclax Treatment

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