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1. Extended exposure to low doses of azacitidine induces differentiation of leukemic stem cells through activation of myeloperoxidase

2. Macrophage Jak2 deficiency accelerates atherosclerosis through defects in cholesterol efflux

3. Novel L-nucleoside analogue, 5-fluorotroxacitabine, displays potent efficacy against acute myeloid leukemia

4. A Phase 1 study of intravenous infusions of tigecycline in patients with acute myeloid leukemia

5. The thymidine dideoxynucleoside analog, alovudine, inhibits the mitochondrial DNA polymerase γ, impairs oxidative phosphorylation and promotes monocytic differentiation in acute myeloid leukemia

8. A novel formulation of tigecycline has enhanced stability and sustained antibacterial and antileukemic activity.

9. Metabolic adaptation to chronic inhibition of mitochondrial protein synthesis in acute myeloid leukemia cells.

10. Suppression of cancer progression by MGAT1 shRNA knockdown.

11. The metabolic enzyme hexokinase 2 localizes to the nucleus in AML and normal haematopoietic stem and progenitor cells to maintain stemness

12. Supplementary Figure Legends 1-4 from Selective Inhibition of Histone Deacetylases Sensitizes Malignant Cells to Death Receptor Ligands

13. Supplementary Figure 2 from Selective Inhibition of Histone Deacetylases Sensitizes Malignant Cells to Death Receptor Ligands

14. Supplementary Figure 3 from Selective Inhibition of Histone Deacetylases Sensitizes Malignant Cells to Death Receptor Ligands

15. Supplementary Figure 4 from Selective Inhibition of Histone Deacetylases Sensitizes Malignant Cells to Death Receptor Ligands

16. Supplementary Figures S1-S9 from Targeting Mitochondria with Avocatin B Induces Selective Leukemia Cell Death

17. Supplementary Figure Legends from Targeting Mitochondria with Avocatin B Induces Selective Leukemia Cell Death

18. Data from Inhibition of the Sodium Potassium Adenosine Triphosphatase Pump Sensitizes Cancer Cells to Anoikis and Prevents Distant Tumor Formation

19. Supplementary Table 1 from Identification of Small Molecules that Sensitize Resistant Tumor Cells to Tumor Necrosis Factor-Family Death Receptors

20. Supplementary Figure 3 from Inhibition of the Sodium Potassium Adenosine Triphosphatase Pump Sensitizes Cancer Cells to Anoikis and Prevents Distant Tumor Formation

22. Supplementary Tables S1-S3 from Targeting Mitochondria with Avocatin B Induces Selective Leukemia Cell Death

23. Data from Wnt Inhibitor Screen Reveals Iron Dependence of β-Catenin Signaling in Cancers

24. Supplementary Figure 1 from Identification of Small Molecules that Sensitize Resistant Tumor Cells to Tumor Necrosis Factor-Family Death Receptors

25. Supplementary Figure 2 from Inhibition of the Sodium Potassium Adenosine Triphosphatase Pump Sensitizes Cancer Cells to Anoikis and Prevents Distant Tumor Formation

26. Supplementary Figure 1 from Inhibition of the Sodium Potassium Adenosine Triphosphatase Pump Sensitizes Cancer Cells to Anoikis and Prevents Distant Tumor Formation

27. Data from Identification of Small Molecules that Sensitize Resistant Tumor Cells to Tumor Necrosis Factor-Family Death Receptors

28. Supplementary Methods and References from Targeting Mitochondria with Avocatin B Induces Selective Leukemia Cell Death

29. IPO11 regulates the nuclear import of BZW1/2 and is necessary for AML cells and stem cells

30. Intracellular IL-23 Receptor (IL-23R) Is Necessary for AML Viability and Regulates Mitotic Spindle and Centrosome Formation

31. Novel L-nucleoside analog, 5-fluorotroxacitabine, displays potent efficacy against acute myeloid leukemia

32. The thymidine dideoxynucleoside analog, alovudine, inhibits the mitochondrial DNA polymerase γ, impairs oxidative phosphorylation and promotes monocytic differentiation in acute myeloid leukemia

33. Venetoclax enhances T cell-mediated anti-leukemic activity by increasing ROS production

34. Preclinical evaluation of the selective small-molecule UBA1 inhibitor, TAK-243, in acute myeloid leukemia

35. The Metabolic Enzyme Hexokinase 2 Localizes to the Nucleus in AML and Normal Hematopoietic Stem/Progenitor Cells to Maintain Stemness

36. Abstract 3099: The metabolic enzyme hexokinase 2 localizes to the nucleus in AML and normal hematopoietic stem/progenitor cells to maintain stemness

37. Leveraging increased cytoplasmic nucleoside kinase activity to target mtDNA and oxidative phosphorylation in AML

38. The mitochondrial peptidase, neurolysin, regulates respiratory chain supercomplex formation and is necessary for AML viability

39. Global Interactome Mapping of Mitochondrial Intermembrane Space Proteases Identifies a Novel Function for HTRA2

40. The Mitochondrial Transacylase, Tafazzin, Regulates AML Stemness by Modulating Intracellular Levels of Phospholipids

41. Mitochondrial carrier homolog 2 is necessary for AML survival

42. Investigating the synergistic mechanism between ibrutinib and daunorubicin in acute myeloid leukemia cells

43. Ibrutinib synergizes with poly(ADP-ribose) glycohydrolase inhibitors to induce cell death in AML cells via a BTK-independent mechanism

44. Disrupting Mitochondrial Copper Distribution Inhibits Leukemic Stem Cell Self-Renewal

45. Mitochondrial ClpP-Mediated Proteolysis Induces Selective Cancer Cell Lethality

46. The Mitochondrial Protease, Neurolysin (NLN), Regulates Respiratory Chain Complex and Supercomplex Formation and Is Necessary for AML Viability

47. The Metabolic Enzyme Hexokinase 2 Localizes to the Nucleus in AML and Normal Hematopoietic Stem/Progenitor Cells to Maintain Stemness

48. AML refractory to primary induction with Ida-FLAG has a poor clinical outcome

49. Select microtubule inhibitors increase lysosome acidity and promote lysosomal disruption in acute myeloid leukemia (AML) cells

50. Mitochondrial DNA damage by bleomycin induces AML cell death

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