Literature DB >> 24062306

The N-terminal flanking region of the A1 domain regulates the force-dependent binding of von Willebrand factor to platelet glycoprotein Ibα.

Lining Ju1, Jing-fei Dong, Miguel A Cruz, Cheng Zhu.   

Abstract

Binding of platelet glycoprotein Ibα (GPIbα) to von Willebrand factor (VWF) initiates platelet adhesion to disrupted vascular surface under arterial blood flow. Flow exerts forces on the platelet that are transmitted to VWF-GPIbα bonds, which regulate their dissociation. Mutations in VWF and/or GPIbα may alter the mechanical regulation of platelet adhesion to cause hemostatic defects as found in patients with von Willebrand disease (VWD). Using a biomembrane force probe, we observed biphasic force-decelerated (catch) and force-accelerated (slip) dissociation of GPIbα from VWF. The VWF A1 domain that contains the N-terminal flanking sequence Gln(1238)-Glu(1260) (1238-A1) formed triphasic slip-catch-slip bonds with GPIbα. By comparison, using a short form of A1 that deletes this sequence (1261-A1) abolished the catch bond, destabilizing its binding to GPIbα at high forces. Importantly, shear-dependent platelet rolling velocities on these VWF ligands in a flow chamber system mirrored the force-dependent single-bond lifetimes. Adding the Gln(1238)-Glu(1260) peptide, which interacted with GPIbα and 1261-A1 but not 1238-A1, to whole blood decreased platelet attachment under shear stress. Soluble Gln(1238)-Glu(1260) reduced the lifetimes of GPIbα bonds with VWF and 1238-A1 but rescued the catch bond of GPIbα with 1261-A1. A type 2B VWD 1238-A1 mutation eliminated the catch bond by prolonging lifetimes at low forces, a type 2M VWD 1238-A1 mutation shifted the respective slip-catch and catch-slip transition points to higher forces, whereas a platelet type VWD GPIbα mutation enhanced the bond lifetime in the entire force regime. These data reveal the structural determinants of VWF activation by hemodynamic force of the circulation.

Entities:  

Keywords:  Biomembrane Force Probe; Catch Bond; Glycoprotein Ibα; Kinetics; Platelets; Single Molecule Biophysics; Thrombosis; von Willebrand Factor

Mesh:

Substances:

Year:  2013        PMID: 24062306      PMCID: PMC3820866          DOI: 10.1074/jbc.M113.504001

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  53 in total

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Authors:  John J Dumas; Ravindra Kumar; Thomas McDonagh; Francis Sullivan; Mark L Stahl; William S Somers; Lidia Mosyak
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  48 in total

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Review 5.  Biophysical nanotools for single-molecule dynamics.

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Authors:  Jongseong Kim; Nathan E Hudson; Timothy A Springer
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-25       Impact factor: 11.205

7.  Glycosylation sterically inhibits platelet adhesion to von Willebrand factor without altering intrinsic conformational dynamics.

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9.  A discontinuous autoinhibitory module masks the A1 domain of von Willebrand factor.

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10.  Von Willebrand factor-A1 domain binds platelet glycoprotein Ibα in multiple states with distinctive force-dependent dissociation kinetics.

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