• Title of article

    Molecular Basis for the Activation of a Catalytic Asparagine Residue in a Self-Cleaving Bacterial Autotransporter

  • Author/Authors

    Travis J. Barnard، نويسنده , , James Gumbart، نويسنده , , Janine H. Peterson، نويسنده , , Nicholas Noinaj، نويسنده , , Nicole C. Easley، نويسنده , , Nathalie Dautin، نويسنده , , Adam J. Kuszak، نويسنده , , Emad Tajkhorshid، نويسنده , , Harris D. Bernstein، نويسنده , , Susan K. Buchanan، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2012
  • Pages
    15
  • From page
    128
  • To page
    142
  • Abstract
    Autotransporters are secreted proteins produced by pathogenic Gram-negative bacteria. They consist of a membrane-embedded β-domain and an extracellular passenger domain that is sometimes cleaved and released from the cell surface. We solved the structures of three noncleavable mutants of the autotransporter EspP to examine how it promotes asparagine cyclization to cleave its passenger. We found that cyclization is facilitated by multiple factors. The active-site asparagine is sterically constrained to conformations favorable for cyclization, while electrostatic interactions correctly orient the carboxamide group for nucleophilic attack. During molecular dynamics simulations, water molecules were observed to enter the active site and to form hydrogen bonds favorable for increasing the nucleophilicity of the active-site asparagine. When the activated asparagine attacks its main-chain carbonyl carbon, the resulting oxyanion is stabilized by a protonated glutamate. Upon cleavage, this proton could be transferred to the leaving amine group, helping overcome a significant energy barrier. Together, these findings provide insight into factors important for asparagine cyclization, a mechanism broadly used for protein cleavage.
  • Keywords
    Outer membrane protein , autocleavage , asparagine cyclization , EspP , crystal structure
  • Journal title
    Journal of Molecular Biology
  • Serial Year
    2012
  • Journal title
    Journal of Molecular Biology
  • Record number

    1254263