Literature DB >> 28692141

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

W Deng1, Y Wang1, S A Druzak1, J F Healey1, A K Syed1, P Lollar1, R Li1.   

Abstract

Essentials The mechanism for the auto-inhibition of von Willebrand factor (VWF) remains unclear. Hydrogen exchange of two VWF A1 fragments with disparate activities was measured and compared. Discontinuous residues flanking A1 form a structural module that blocks A1 binding to the platelet. Our results suggest a potentially unified model of VWF activation. Click to hear an ISTH Academy presentation on the domain architecture of VWF and activation by elongational flow by Dr Springer
SUMMARY: Background How von Willebrand factor (VWF) senses and responds to shear flow remains unclear. In the absence of shear flow, VWF or its fragments can be induced to bind spontaneously to platelet GPIbα. Objectives To elucidate the auto-inhibition mechanism of VWF. Methods Hydrogen-deuterium exchange (HDX) of two recombinant VWF fragments expressed from baby hamster kidney cells were measured and compared. Results The shortA1 protein contains VWF residues 1261-1472 and binds GPIbα with a significantly higher affinity than the longA1 protein that contains VWF residues 1238-1472. Both proteins contain the VWF A1 domain (residues 1272-1458). Many residues in longA1, particularly those in the N- and C-terminal sequences flanking the A1 domain, and in helix α1, loops α1β2 and β3α2, demonstrated markedly reduced HDX compared with their counterparts in shortA1. The HDX-protected region in longA1 overlaps with the GPIbα-binding interface and is clustered with type 2B von Willebrand disease (VWD) mutations. Additional comparison with the HDX of denatured longA1 and ristocetin-bound longA1 indicates the N- and C-terminal sequences flanking the A1 domain form cooperatively an integrated autoinhibitory module (AIM) that interacts with the HDX-protected region. Binding of ristocetin to the C-terminal part of the AIM desorbs the AIM from A1 and enables longA1 binding to GPIbα. Conclusion The discontinuous AIM binds the A1 domain and prevents it from binding to GPIbα, which has significant implications for the pathogenesis of type 2B VWD and the shear-induced activation of VWF activity.
© 2017 International Society on Thrombosis and Haemostasis.

Entities:  

Keywords:  Type 2B von Willebrand disease; blood platelet; ristocetin; tandem mass spectrometry; von Willebrand factor

Mesh:

Substances:

Year:  2017        PMID: 28692141      PMCID: PMC5585049          DOI: 10.1111/jth.13775

Source DB:  PubMed          Journal:  J Thromb Haemost        ISSN: 1538-7836            Impact factor:   5.824


  60 in total

Review 1.  The hydrogen exchange core and protein folding.

Authors:  R Li; C Woodward
Journal:  Protein Sci       Date:  1999-08       Impact factor: 6.725

2.  Force-induced on-rate switching and modulation by mutations in gain-of-function von Willebrand diseases.

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

3.  Protein hydrogen exchange at residue resolution by proteolytic fragmentation mass spectrometry analysis.

Authors:  Zhong-Yuan Kan; Benjamin T Walters; Leland Mayne; S Walter Englander
Journal:  Proc Natl Acad Sci U S A       Date:  2013-09-09       Impact factor: 11.205

4.  Shear-dependent changes in the three-dimensional structure of human von Willebrand factor.

Authors:  C A Siedlecki; B J Lestini; K K Kottke-Marchant; S J Eppell; D L Wilson; R E Marchant
Journal:  Blood       Date:  1996-10-15       Impact factor: 22.113

5.  Ristocetin--a new tool in the investigation of platelet aggregation.

Authors:  M A Howard; B G Firkin
Journal:  Thromb Diath Haemorrh       Date:  1971-10-31

6.  von Willebrand factor mutation enhancing interaction with platelets in patients with normal multimeric structure.

Authors:  L Holmberg; J A Dent; R Schneppenheim; U Budde; J Ware; Z M Ruggeri
Journal:  J Clin Invest       Date:  1993-05       Impact factor: 14.808

7.  Mutations of von Willebrand factor gene in families with von Willebrand disease in the Aland Islands.

Authors:  Z P Zhang; M Blombäck; D Nyman; M Anvret
Journal:  Proc Natl Acad Sci U S A       Date:  1993-09-01       Impact factor: 11.205

8.  Initiation of platelet adhesion by arrest onto fibrinogen or translocation on von Willebrand factor.

Authors:  B Savage; E Saldívar; Z M Ruggeri
Journal:  Cell       Date:  1996-01-26       Impact factor: 41.582

9.  Effects of different amino-acid substitutions in the leucine 694-proline 708 segment of recombinant von Willebrand factor.

Authors:  L Hilbert; C Gaucher; C Mazurier
Journal:  Br J Haematol       Date:  1995-12       Impact factor: 6.998

Review 10.  Biochemistry and genetics of von Willebrand factor.

Authors:  J E Sadler
Journal:  Annu Rev Biochem       Date:  1998       Impact factor: 23.643

View more
  21 in total

1.  Calcium-induced structural rearrangements release autoinhibition in the Rap-GEF CalDAG-GEFI.

Authors:  Aaron A Cook; Wei Deng; Jinqi Ren; Renhao Li; John Sondek; Wolfgang Bergmeier
Journal:  J Biol Chem       Date:  2018-04-05       Impact factor: 5.157

2.  Force-Regulated Refolding of the Mechanosensory Domain in the Platelet Glycoprotein Ib-IX Complex.

Authors:  X Frank Zhang; Wei Zhang; M Edward Quach; Wei Deng; Renhao Li
Journal:  Biophys J       Date:  2019-04-08       Impact factor: 4.033

3.  Molecular coevolution of coagulation factor VIII and von Willebrand factor.

Authors:  Philip M Zakas; Christopher W Coyle; Anja Brehm; Marion Bayer; Barbara Solecka-Witulska; Caelan E Radford; Christine Brown; Kate Nesbitt; Courtney Dwyer; Christoph Kannicht; H Trent Spencer; Eric A Gaucher; Christopher B Doering; David Lillicrap
Journal:  Blood Adv       Date:  2021-02-09

4.  Fc-independent immune thrombocytopenia via mechanomolecular signaling in platelets.

Authors:  M Edward Quach; Matthew A Dragovich; Wenchun Chen; Anum K Syed; Wenpeng Cao; Xin Liang; Wei Deng; Simon F De Meyer; Guangheng Zhu; Jun Peng; Heyu Ni; Carolyn M Bennett; Ming Hou; Jerry Ware; Hans Deckmyn; X Frank Zhang; Renhao Li
Journal:  Blood       Date:  2017-12-04       Impact factor: 22.113

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

Authors:  Alexander Tischer; Venkata R Machha; Laurie Moon-Tasson; Linda M Benson; Matthew Auton
Journal:  J Thromb Haemost       Date:  2019-09-03       Impact factor: 5.824

6.  The physical spacing between the von Willebrand factor D'D3 and A1 domains regulates platelet adhesion in vitro and in vivo.

Authors:  C Zhang; A Kelkar; M Nasirikenari; J T Y Lau; M Sveinsson; U C Sharma; S Pokharel; S Neelamegham
Journal:  J Thromb Haemost       Date:  2018-01-22       Impact factor: 5.824

7.  Delimiting the autoinhibitory module of von Willebrand factor.

Authors:  W Deng; K M Voos; J K Colucci; E R Legan; E A Ortlund; P Lollar; R Li
Journal:  J Thromb Haemost       Date:  2018-08-16       Impact factor: 5.824

8.  First High-Resolution Crystal Structures of the Glucocorticoid Receptor Ligand-Binding Domain-Peroxisome Proliferator-Activated γ Coactivator 1-α Complex with Endogenous and Synthetic Glucocorticoids.

Authors:  Xu Liu; Yashuo Wang; Eric A Ortlund
Journal:  Mol Pharmacol       Date:  2019-08-07       Impact factor: 4.436

9.  Humanized GPIbα-von Willebrand factor interaction in the mouse.

Authors:  Sachiko Kanaji; Jennifer N Orje; Taisuke Kanaji; Yuichi Kamikubo; Yosuke Morodomi; Yunfeng Chen; Alessandro Zarpellon; Jerome Eberhardt; Stefano Forli; Scot A Fahs; Rashmi Sood; Sandra L Haberichter; Robert R Montgomery; Zaverio M Ruggeri
Journal:  Blood Adv       Date:  2018-10-09

10.  Coarse-Grain Modeling of Shear-Induced Binding between von Willebrand Factor and Collagen.

Authors:  Wei Wei; Chuqiao Dong; Michael Morabito; Xuanhong Cheng; X Frank Zhang; Edmund B Webb; Alparslan Oztekin
Journal:  Biophys J       Date:  2018-04-24       Impact factor: 4.033

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.