• Title of article

    Synthesis and evaluation of non-hydrolyzable d-mannose 6-phosphate surrogates reveal 6-deoxy-6-dicarboxymethyl-d-mannose as a new strong inhibitor of phosphomannose isomerases Original Research Article

  • Author/Authors

    Johanna Foret، نويسنده , , Benoit de Courcy، نويسنده , , Nohad Gresh، نويسنده , , Jean-Philip Piquemal، نويسنده , , Laurent Salmon، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2009
  • Pages
    8
  • From page
    7100
  • To page
    7107
  • Abstract
    Non-hydrolyzable d-mannose 6-phosphate analogues in which the phosphate group was replaced by a phosphonomethyl, a dicarboxymethyl, or a carboxymethyl group were synthesized and kinetically evaluated as substrate analogues acting as potential inhibitors of type I phosphomannose isomerases (PMIs) from Saccharomyces cerevisiae and Escherichia coli. While 6-deoxy-6-phosphonomethyl-d-mannose and 6-deoxy-6-carboxymethyl-d-mannose did not inhibit the enzymes significantly, 6-deoxy-6-dicarboxymethyl-d-mannose appeared as a new strong competitive inhibitor of both S. cerevisiae and E. coli PMIs with Km/Ki ratios of 28 and 8, respectively. We thus report the first malonate-based inhibitor of an aldose–ketose isomerase to date. Phosphonomethyl mimics of the 1,2-cis-enediolate high-energy intermediate postulated for the isomerization reaction catalyzed by PMIs were also synthesized but behave as poor inhibitors of PMIs. A polarizable molecular mechanics (SIBFA) study was performed on the complexes of d-mannose 6-phosphate and two of its analogues with PMI from Candida albicans, an enzyme involved in yeast infection homologous to S. cerevisiae and E. coli PMIs. It shows that effective binding to the catalytic site occurs with retention of the Zn(II)-bound water molecule. Thus the binding of the hydroxyl group on C1 of the ligand to Zn(II) should be water-mediated. The kinetic study reported here also suggests the dianionic character of the phosphate surrogate as a likely essential parameter for strong binding of the inhibitor to the enzyme active site.
  • Keywords
    Malonates , Polarizable molecular mechanics , Phosphonates , Zinc metalloenzymes , Phosphomannose isomerase inhibitors , Sugar phosphates
  • Journal title
    Bioorganic and Medicinal Chemistry
  • Serial Year
    2009
  • Journal title
    Bioorganic and Medicinal Chemistry
  • Record number

    1306417