TY - JOUR
T1 - Studies on the essential intramolecular interaction between the A1 and A2 domains of von willebrand factor
AU - Karoulia, Zoi
AU - Papadopoulos, Georgios
AU - Nomikos, Michail
AU - Thanassoulas, Angelos
AU - Papadopoulou, Theodora Choli
AU - Nounesis, George
AU - Kontou, Maria
AU - Stathopoulos, Constantinos
AU - Leonidas, Demetres D.
PY - 2013/2
Y1 - 2013/2
N2 - Haemostasis depends on the balanced participation of von Willebrand factor (vWF), a large multimeric and multidomain glycoprotein with essential role during the initial steps of blood clotting. Mature vWF circulates in plasma with the form of multimers comprised of several domains with diverse functions. More specifically, the A1 domain of vWF plays crucial role in haemostasis, regulating the mechanism of platelet adhesion in sites of vascular injury while A2 domain regulates the normal turnover of vWF. Recent studies have implied that an intramolecular interaction between A1 and A2 domains exists, which prevents platelets adhesion and subsequently inhibits the initial step of the blood coagulation mechanism. In an effort to elucidate the essential nature of the interaction between these two domains, we produced and purified the corresponding recombinant unmodified polypeptides. The secondary structure of the two domains was studied individually and as a mixture using circular dichroism spectroscopy. The observed interaction was verified by ELISA competition assays using antibodies and their ability to form productive interactions was further characterized kinetically. In silico analysis (docking and molecular dynamics simulations) of the A1-A2 binding indicated three possible structural models highlighting the crucial, for this interaction, region.
AB - Haemostasis depends on the balanced participation of von Willebrand factor (vWF), a large multimeric and multidomain glycoprotein with essential role during the initial steps of blood clotting. Mature vWF circulates in plasma with the form of multimers comprised of several domains with diverse functions. More specifically, the A1 domain of vWF plays crucial role in haemostasis, regulating the mechanism of platelet adhesion in sites of vascular injury while A2 domain regulates the normal turnover of vWF. Recent studies have implied that an intramolecular interaction between A1 and A2 domains exists, which prevents platelets adhesion and subsequently inhibits the initial step of the blood coagulation mechanism. In an effort to elucidate the essential nature of the interaction between these two domains, we produced and purified the corresponding recombinant unmodified polypeptides. The secondary structure of the two domains was studied individually and as a mixture using circular dichroism spectroscopy. The observed interaction was verified by ELISA competition assays using antibodies and their ability to form productive interactions was further characterized kinetically. In silico analysis (docking and molecular dynamics simulations) of the A1-A2 binding indicated three possible structural models highlighting the crucial, for this interaction, region.
KW - A1-A2 domain interaction
KW - Circular Dichroism spectroscopy
KW - Molecular Dynamics simulations
KW - Von Willebrand factor
UR - https://www.scopus.com/pages/publications/84877988749
U2 - 10.2174/092986613804725226
DO - 10.2174/092986613804725226
M3 - Article
AN - SCOPUS:84877988749
SN - 0929-8665
VL - 20
SP - 231
EP - 240
JO - Protein and Peptide Letters
JF - Protein and Peptide Letters
IS - 2
ER -