• Title of article

    Substrate-Induced Conformational Changes Occur in All Cleaved Forms of Caspase-6

  • Author/Authors

    Sravanti Vaidya، نويسنده , , Elih M. Vel?zquez-Delgado، نويسنده , , Genevieve Abbruzzese، نويسنده , , Jeanne A. Hardy، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    17
  • From page
    75
  • To page
    91
  • Abstract
    Caspase-6 is an apoptotic cysteine protease that also governs disease progression in Huntingtonʹs and Alzheimerʹs diseases. Caspase-6 is of great interest as a target for treatment of these neurodegenerative diseases; however, the molecular basis of caspase-6 function and regulation remains poorly understood. In the recently reported structure of caspase-6, the 60ʹs and 130ʹs helices at the base of the substrate-binding groove extend upward, in a conformation entirely different from that of any other caspase. Presently, the central question about caspase-6 structure and function is whether the extended conformation is the catalytically competent conformation or whether the extended helices must undergo a large conformational rearrangement in order to bind substrate. We have generated a series of caspase-6 cleavage variants, including a novel constitutively two-chain form, and determined crystal structures of caspase-6 with and without the intersubunit linker. This series allows evaluation of the role of the prodomain and intersubunit linker on caspase-6 structure and function before and after substrate binding. Caspase-6 is inherently more stable than closely related caspases. Cleaved caspase-6 with both the prodomain and the linker present is the most stable, indicating that these two regions act in concert to increase stability, but maintain the extended conformation in the unliganded state. Moreover, these data suggest that caspase-6 undergoes a significant conformational change upon substrate binding, adopting a structure that is more like canonical caspases.
  • Keywords
    apoptosis , Crystallography , protease , neurodegeneration , ligand binding
  • Journal title
    Journal of Molecular Biology
  • Serial Year
    2011
  • Journal title
    Journal of Molecular Biology
  • Record number

    1253297