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8. The Use of Flavylium Salts as Dynamic Inhibitor Moieties for Human Cb5R

9. Are There Lipid Membrane-Domain Subtypes in Neurons with Different Roles in Calcium Signaling?

15. Biochemical and biophysical characterization of the caveolin-2 interaction with membranes and analysis of the protein structural alteration by the presence of cholesterol

16. Structural features of cytochrome b5 –cytochrome b5 reductase complex formation and implications for the intramolecular dynamics of cytochrome b5 reductase

17. Screen-printed electrodes testing for detection of potential stress biomarkers in sweat

24. The Use of Flavylium Salts as Dynamic Inhibitor Moieties for Human C b 5 R.

26. Mitophagy in human diseases

29. Mitophagy in Human Diseases

33. Targeting Lipid Peroxidation for Cancer Treatment

34. Human erythrocytes exposure to juglone leads to an increase of superoxide anion production associated with cytochrome b5 reductase uncoupling

38. Phosphomimetic substitution of cytochrome c tyrosine 48 decreases respiration and binding to cardiolipin and abolishes ability to trigger downstream caspase activation

39. The critical role of lipid rafts nanodomains in the cross-talk between calcium and reactive oxygen and nitrogen species in cerebellar granule neurons apoptosis by extracellular potassium deprivation

41. Ligand accessibility to heme cytochrome b5 coordinating sphere and enzymatic activity enhancement upon tyrosine ionization.

43. Correlation between the potency of flavonoids for cytochrome c reduction and inhibition of cardiolipin-induced peroxidase activity.

45. Lipidomics identifies cardiolipin oxidation as a mitochondrial target for redox therapy of brain injury

46. A mitochondria-targeted inhibitor of cytochrome c peroxidase mitigates radiation-induced death

47. Global Phospholipidomics Analysis Reveals Selective Pulmonary Peroxidation Profiles upon Inhalation of Single-Walled Carbon Nanotubes

48. Phosphomimetic Substitution of CytochromecTyrosine 48 Decreases Respiration and Binding to Cardiolipin and Abolishes Ability to Trigger Downstream Caspase Activation

49. Mitochondrial DNA Mutations Induce Mitochondrial Dysfunction, Apoptosis and Sarcopenia in Skeletal Muscle of Mitochondrial DNA Mutator Mice

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