• Title of article

    Heat-induced fibrillation of BclXL apoptotic repressor Original Research Article

  • Author/Authors

    Vikas Bhat، نويسنده , , Max B. Olenick، نويسنده , , Brett J. Schuchardt، نويسنده , , David C. Mikles، نويسنده , , Brian J. Deegan، نويسنده , , Caleb B. McDonald، نويسنده , , Kenneth L. Seldeen، نويسنده , , Dmitry Kurouski، نويسنده , , Mohd Hafeez Faridi، نويسنده , , Mohammed M. Shareef، نويسنده , , Vineet Gupta، نويسنده , , Igor K. Lednev، نويسنده , , Amjad Farooq، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    14
  • From page
    12
  • To page
    25
  • Abstract
    The BclXL apoptotic repressor bears the propensity to associate into megadalton oligomers in solution, particularly under acidic pH. Herein, using various biophysical methods, we analyze the effect of temperature on the oligomerization of BclXL. Our data show that BclXL undergoes irreversible aggregation and assembles into highly-ordered rope-like homogeneous fibrils with length in the order of mm and a diameter in the μm-range under elevated temperatures. Remarkably, the formation of such fibrils correlates with the decay of a largely α-helical fold into a predominantly β-sheet architecture of BclXL in a manner akin to the formation of amyloid fibrils. Further interrogation reveals that while BclXL fibrils formed under elevated temperatures show no observable affinity toward BH3 ligands, they appear to be optimally primed for insertion into cardiolipin bicelles. This salient observation strongly argues that BclXL fibrils likely represent an on-pathway intermediate for insertion into mitochondrial outer membrane during the onset of apoptosis. Collectively, our study sheds light on the propensity of BclXL to form amyloid-like fibrils with important consequences on its mechanism of action in gauging the apoptotic fate of cells in health and disease.
  • Keywords
    amyloid fibrils , ?–? structural transition , Kinetic trap , Irreversible aggregation , Membrane insertion
  • Journal title
    Biophysical Chemistry
  • Serial Year
    2013
  • Journal title
    Biophysical Chemistry
  • Record number

    1120635