TY - JOUR
T1 - A hot-spot motif characterizes the interface between a designed ankyrin-repeat protein and its target ligand
AU - Cheung, Luthur Siu Lun
AU - Kanwar, Manu
AU - Ostermeier, Marc
AU - Konstantopoulos, Konstantinos
N1 - Funding Information:
This work was supported by Defense Threat Reduction Agency grant HDTRA1-09-1-0016 (to K.K. and M.O.), National Institutes of Health/National Cancer Institute grant R01 CA101135 (to K.K.), National Institute of General Medicine at the National Institutes of Health grant R01-GM066972 (to M.O.), and a postdoctoral fellowship from the American Heart Association (to L.S.-L.C.).
PY - 2012/2/8
Y1 - 2012/2/8
N2 - Nonantibody scaffolds such as designed ankyrin repeat proteins (DARPins) can be rapidly engineered to detect diverse target proteins with high specificity and offer an attractive alternative to antibodies. Using molecular simulations, we predicted that the binding interface between DARPin off7 and its ligand (maltose binding protein; MBP) is characterized by a hot-spot motif in which binding energy is largely concentrated on a few amino acids. To experimentally test this prediction, we fused MBP to a transmembrane domain to properly orient the protein into a polymer-cushioned lipid bilayer, and characterized its interaction with off7 using force spectroscopy. Using this, to our knowledge, novel technique along with surface plasmon resonance, we validated the simulation predictions and characterized the effects of select mutations on the kinetics of the off7-MBP interaction. Our integrated approach offers scientific insights on how the engineered protein interacts with the target molecule.
AB - Nonantibody scaffolds such as designed ankyrin repeat proteins (DARPins) can be rapidly engineered to detect diverse target proteins with high specificity and offer an attractive alternative to antibodies. Using molecular simulations, we predicted that the binding interface between DARPin off7 and its ligand (maltose binding protein; MBP) is characterized by a hot-spot motif in which binding energy is largely concentrated on a few amino acids. To experimentally test this prediction, we fused MBP to a transmembrane domain to properly orient the protein into a polymer-cushioned lipid bilayer, and characterized its interaction with off7 using force spectroscopy. Using this, to our knowledge, novel technique along with surface plasmon resonance, we validated the simulation predictions and characterized the effects of select mutations on the kinetics of the off7-MBP interaction. Our integrated approach offers scientific insights on how the engineered protein interacts with the target molecule.
UR - https://www.scopus.com/pages/publications/84856763445
UR - https://www.scopus.com/pages/publications/84856763445#tab=citedBy
U2 - 10.1016/j.bpj.2012.01.004
DO - 10.1016/j.bpj.2012.01.004
M3 - Article
C2 - 22325262
AN - SCOPUS:84856763445
SN - 0006-3495
VL - 102
SP - 407
EP - 416
JO - Biophysical journal
JF - Biophysical journal
IS - 3
ER -