• Title of article

    Exploring the molecular basis of human manganese superoxide dismutase inactivation mediated by tyrosine 34 nitration

  • Author/Authors

    Moreno، نويسنده , , Diego M. and Martي، نويسنده , , Marcelo A. and De Biase، نويسنده , , Pablo M. and Estrin، نويسنده , , Darيo A. and Demicheli، نويسنده , , Verَnica and Radi، نويسنده , , Rafael and Boechi، نويسنده , , Leonardo، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    6
  • From page
    304
  • To page
    309
  • Abstract
    Manganese Superoxide Dismutase (MnSOD) is an essential mitochondrial antioxidant enzyme that protects organisms against oxidative damage, dismutating superoxide radical ( O 2 - ) into H2O2 and O2. The active site of the protein presents a Mn ion in a distorted trigonal–bipyramidal environment, coordinated by H26, H74, H163, D159 and one −OH ion or H2O molecule. The catalytic cycle of the enzyme is a “ping-pong” mechanism involving Mn3+/Mn2+. It is known that nitration of Y34 is responsible for enzyme inactivation, and that this protein oxidative modification is found in tissues undergoing inflammatory and degenerative processes. However, the molecular basis about MnSOD tyrosine nitration affects the protein catalytic function is mostly unknown. s work we strongly suggest, using computer simulation tools, that Y34 nitration affects protein function by restricting ligand access to the active site. In particular, deprotonation of 3-nitrotyrosine increases drastically the energetic barrier for ligand entry due to the absence of the proton. sults for the WT and selected mutant proteins confirm that the phenolic moiety of Y34 plays a key role in assisting superoxide migration.
  • Keywords
    MnSOD , Tyrosine nitration , Enzyme inactivation , Multiple steered molecular dynamics , MSMD , free energy , Molecular dynamics , Manganese superoxide dismutase , Ligand migration
  • Journal title
    Archives of Biochemistry and Biophysics
  • Serial Year
    2011
  • Journal title
    Archives of Biochemistry and Biophysics
  • Record number

    1631990