Title of article :
An Allosteric Circuit in Caspase-1
Author/Authors :
Debajyoti Datta، نويسنده , , Justin M. Scheer، نويسنده , , Michael J. Romanowski، نويسنده , , James A. Wells، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2008
Abstract :
Structural studies of caspase-1 reveal that the dimeric thiol protease can exist in two states: in an on-state, when the active site is occupied, or in an off-state, when the active site is empty or when the enzyme is bound by a synthetic allosteric ligand at the dimer interface ∼ 15 Å from the active site. A network of 21 hydrogen bonds from nine side chains connecting the active and allosteric sites change partners when going between the on-state and the off-state. Alanine-scanning mutagenesis of these nine side chains shows that only two of them—Arg286 and Glu390, which form a salt bridge—have major effects, causing 100- to 200-fold reductions in catalytic efficiency (kcat/Km). Two neighbors, Ser332 and Ser339, have minor effects, causing 4- to 7-fold reductions. A more detailed mutational analysis reveals that the enzyme is especially sensitive to substitutions of the salt bridge: even a homologous R286K substitution causes a 150-fold reduction in kcat/Km. X-ray crystal structures of these variants suggest the importance of both the salt bridge interaction and the coordination of solvent water molecules near the allosteric binding pocket. Thus, only a small subset of side chains from the larger hydrogen bonding network is critical for activity. These form a contiguous set of interactions that run from one active site through the allosteric site at the dimer interface and onto the second active site. This subset constitutes a functional allosteric circuit or “hot wire” that promotes site-to-site coupling.
Keywords :
Caspase-1 , Allostery , H-bonding , alanine-scanning mutagenesis , cooperativity
Journal title :
Journal of Molecular Biology
Journal title :
Journal of Molecular Biology