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1. Crif1 deficiency reduces adipose OXPHOS capacity and triggers inflammation and insulin resistance in mice.

2. The tumor suppressive effect and apoptotic mechanism of TRAIL gene‐containing recombinant NDV in TRAIL‐resistant colorectal cancer HT‐29 cells and TRAIL‐nonresistant HCT116 cells, with each cell bearing a mouse model

3. Expression of LONP1 Is High in Visceral Adipose Tissue in Obesity, and Is Associated with Glucose and Lipid Metabolism

4. Cellular and Intercellular Homeostasis in Adipose Tissue with Mitochondria-Specific Stress

5. Latrophilin-2 is a novel receptor of LRG1 that rescues vascular and neurological abnormalities and restores diabetic erectile function

6. Rg3-enriched Korean Red Ginseng enhances blood pressure stability in spontaneously hypertensive rats

7. CR6 interacting factor 1 deficiency promotes endothelial inflammation by SIRT1 downregulation.

8. Rg3-enriched Korean Red Ginseng improves vascular function in spontaneously hypertensive rats

9. Cellular and Intercellular Homeostasis in Adipose Tissue with Mitochondria-Specific Stress

10. An adipocyte-specific defect in oxidative phosphorylation increases systemic energy expenditure and protects against diet-induced obesity in mouse models

11. CRIF1 deficiency induces p66shc-mediated oxidative stress and endothelial activation.

12. Differential roles of GDF15 and FGF21 in systemic metabolic adaptation to the mitochondrial integrated stress response

13. Redox factor-1 activates endothelial SIRTUIN1 through reduction of conserved cysteine sulfhydryls in its deacetylase domain.

14. Reduced oxidative capacity in macrophages results in systemic insulin resistance

15. ANGPTL6 expression is coupled with mitochondrial OXPHOS function to regulate adipose FGF21

16. Mitohormesis in Hypothalamic POMC Neurons Mediates Regular Exercise-Induced High-Turnover Metabolism

17. Nafamostat mesilate promotes endothelium-dependent vasorelaxation via the Akt-eNOS dependent pathway

18. Nafamostat mesilate attenuates transient focal ischemia/reperfusion-induced brain injury via the inhibition of endoplasmic reticulum stress

19. Isocitrate dehydrogenase 2 deficiency induces endothelial inflammation via p66sh-mediated mitochondrial oxidative stress

20. CR6 interacting factor 1 deficiency promotes endothelial inflammation by SIRT1 downregulation

21. Growth Differentiation Factor 15 Mediates Systemic Glucose Regulatory Action of T-Helper Type 2 Cytokines

22. Sirtuin1 regulates cardiac electrical activity by deacetylating the cardiac sodium channel

23. CR6-Interacting Factor 1 Deficiency Impairs Vascular Function by Inhibiting the Sirt1-Endothelial Nitric Oxide Synthase Pathway

24. Abstract 433: Mitochondrial Nadp-dependent Isocitrate Dehydrogenase is a Key Regulator in Vasomotor Function

25. Rg3-enriched Korean Red Ginseng enhances blood pressure stability in spontaneously hypertensive rats

26. IDH2 deficiency impairs mitochondrial function in endothelial cells and endothelium-dependent vasomotor function

27. Homocysteine promotes human endothelial cell dysfunction via site-specific epigenetic regulation of p66shc

28. A single-nucleotide variation in a p53-binding site affects nutrient-sensitive human SIRT1 expression

29. SIRT1 deacetylates APE1 and regulates cellular base excision repair

30. P53 Impairs Endothelium-Dependent Vasomotor Function Through Transcriptional Upregulation of P66shc

31. SIRT1 promotes endothelium-dependent vascular relaxation by activating endothelial nitric oxide synthase

32. Ex VivoResponses for Interferon-gamma and Proinflammatory Cytokine Secretion to Low-Molecular-Weight Antigen MTB12 ofMycobacterium tuberculosisduring Human Tuberculosis

33. Intracellular network of phosphatidylinositol 3-kinase, mammalian target of the rapamycin/70 kDa ribosomal S6 kinase 1, and mitogen-activated protein kinases pathways for regulating mycobacteria-induced IL-23 expression in human macrophages

34. Differential regulation of interleukin-12 and tumour necrosis factor-α by phosphatidylinositol 3-kinase and ERK 1/2 pathways duringMycobacterium tuberculosisinfection

35. Role of the Phosphatidylinositol 3-Kinase and Mitogen-Activated Protein Kinase Pathways in the Secretion of Tumor Necrosis Factor-α and Interleukin-10 by the PPD Antigen of Mycobacterium tuberculosis

36. CRIF1 Deficiency Induces p66shc-Mediated Oxidative Stress andEndothelial Activation

37. Docosahexaenoic acid improves vascular function via up-regulation of SIRT1 expression in endothelial cells

38. Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice

39. Reduced oxidative capacity in macrophages results in systemic insulin resistance.

40. Growth Differentiation Factor 15 Mediates Systemic Glucose Regulatory Action of T-Helper Type 2 Cytokines.

41. Mitochondrial oxidative phosphorylation reserve is required for hormone- and PPARγ agonist-induced adipogenesis

42. Abstract 470: Redox Rgulation of SIRTUIN1 in Endothelium-Dependent Vascular Function

43. p53 impairs endothelial function by transcriptionally repressing Kruppel-Like Factor 2

44. Histone Deacetylase-3 antagonizes Aspirin-stimulated Endothelial Nitric Oxide production by reversing Aspirin-induced lysine acetylation of Endothelial Nitric Oxide Synthase

45. Nafamostat Mesilate Inhibits TNF-α-Induced Vascular Endothelial Cell Dysfunction by Inhibiting Reactive Oxygen Species Production

46. Diacyltrehalose of Mycobacterium tuberculosis inhibits lipopolysaccharide- and mycobacteria-induced proinflammatory cytokine production in human monocytic cells

47. Mycobacterium tuberculosis HBHA Protein Reacts Strongly with the Serum Immunoglobulin M of Tuberculosis Patients

48. The mycobacterial 38-kilodalton glycolipoprotein antigen activates the mitogen-activated protein kinase pathway and release of proinflammatory cytokines through Toll-like receptors 2 and 4 in human monocytes

49. Identification of the new T-cell-stimulating antigens from Mycobacterium tuberculosis culture filtrate

50. Biosynthesis of polyhydroxyalkanoate copolyester containing cyclohexyl groups by Pseudomonas oleovorans

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