Literature DB >> 2932468

Substructure of human von Willebrand factor.

W E Fowler, L J Fretto, K K Hamilton, H P Erickson, P A McKee.   

Abstract

Using electron microscopy, we have visualized the substructure of human von Willebrand factor (vWf) purified by two different approaches. vWf multimers, which appear as flexible strands varying in length up to 2 micron, consist of dimeric units (protomers) polymerized linearly in an end-to-end fashion through disulfide bonds. Examination of small multimers (e.g., one-mers, two-mers, and three-mers) suggests that each protomer consists of two large globular end domains (22 X 6.5 nm) connected to a small central node (6.4 X 3.4 nm) by two flexible rod domains each approximately 34 nm long and approximately 2 nm in diameter. The protomer is 120 nm in length when fully extended. These same structural features are seen both in vWf molecules that were rapidly purified from fresh plasma by a new two-step procedure and in those purified from lyophilized intermediate-purity Factor VIII/vWf concentrates. The 240,000-mol wt subunit observed by gel electrophoresis upon complete reduction of vWf apparently contains both a rod domain and a globular domain and corresponds to one half of the protomer. Two subunits are disulfide-linked, probably near their carboxyl termini, to form the protomer; disulfide bonds in the amino-terminal globular ends link promoters to form vWf multimers. The vWf multimer strands have at least two morphologically distinct types of ends, which may result from proteolytic cleavage in the globular domains after formation of large linear polymers. In addition to releasing fragments that were similar in size and shape to the repeating protomeric unit, plasmic degradation of either preparation of vWf reduced the size of multimers, but had no detectable effect on the substructure of internal protomers.

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Year:  1985        PMID: 2932468      PMCID: PMC424111          DOI: 10.1172/JCI112129

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  35 in total

1.  Isolation and characterization of human Factor VIII (antihemophilic factor).

Authors:  M E Legaz; G Schmer; R B Counts; E W Davie
Journal:  J Biol Chem       Date:  1973-06-10       Impact factor: 5.157

2.  Preparation of single molecules and supramolecular complexes for high-resolution metal shadowing.

Authors:  W E Fowler; U Aebi
Journal:  J Ultrastruct Res       Date:  1983-06

Review 3.  Factor VIII/von Willebrand factor.

Authors:  T S Zimmerman; Z M Ruggeri; C A Fulcher
Journal:  Prog Hematol       Date:  1983

4.  Cleavage of human von Willebrand factor by platelet calcium-activated protease.

Authors:  T J Kunicki; R R Montgomery; J Schullek
Journal:  Blood       Date:  1985-02       Impact factor: 22.113

5.  The subunit structure of normal and hemophilic factor VIII.

Authors:  G A Shapiro; J C Andersen; S V Pizzo; P A McKee
Journal:  J Clin Invest       Date:  1973-09       Impact factor: 14.808

6.  Effects of plasmin on von Willebrand factor multimers. Degradation in vitro and stimulation of release in vivo.

Authors:  K K Hamilton; L J Fretto; D S Grierson; P A McKee
Journal:  J Clin Invest       Date:  1985-07       Impact factor: 14.808

7.  Antihemophilic factor antigen. Localization in endothelial cells by immunofluorescent microscopy.

Authors:  L W Hoyer; R P De los Santos; J R Hoyer
Journal:  J Clin Invest       Date:  1973-11       Impact factor: 14.808

8.  Gel-exclusion chromatography on S1000 Sephacryl: application to phospholipid vesicles.

Authors:  J A Reynolds; Y Nozaki; C Tanford
Journal:  Anal Biochem       Date:  1983-04-15       Impact factor: 3.365

9.  The fibrinogen molecule: its size, shape, and mode of polymerization.

Authors:  C E HALL; H S SLAYTER
Journal:  J Biophys Biochem Cytol       Date:  1959-01-25

10.  Biosynthesis of von Willebrand protein by human endothelial cells: processing steps and their intracellular localization.

Authors:  D D Wagner; V J Marder
Journal:  J Cell Biol       Date:  1984-12       Impact factor: 10.539

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  46 in total

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Authors:  W E Fowler; P J Fay; D S Arvan; V J Marder
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2.  Force sensing by the vascular protein von Willebrand factor is tuned by a strong intermonomer interaction.

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Journal:  Proc Natl Acad Sci U S A       Date:  2016-01-19       Impact factor: 11.205

3.  Structural organization of Weibel-Palade bodies revealed by cryo-EM of vitrified endothelial cells.

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Journal:  Proc Natl Acad Sci U S A       Date:  2009-09-29       Impact factor: 11.205

Review 4.  Diagnostic approach to von Willebrand disease.

Authors:  Christopher Ng; David G Motto; Jorge Di Paola
Journal:  Blood       Date:  2015-02-23       Impact factor: 22.113

5.  Application of fluorescence spectroscopy to quantify shear-induced protein conformation change.

Authors:  Efrosyni Themistou; Indrajeet Singh; Chengwei Shang; Sathy V Balu-Iyer; Paschalis Alexandridis; Sriram Neelamegham
Journal:  Biophys J       Date:  2009-11-04       Impact factor: 4.033

Review 6.  Diverse activities of von Willebrand factor in traumatic brain injury and associated coagulopathy.

Authors:  Xin Xu; Rosemary Kozar; Jianning Zhang; Jing-Fei Dong
Journal:  J Thromb Haemost       Date:  2020-10-06       Impact factor: 5.824

7.  Mechanical activation of a multimeric adhesive protein through domain conformational change.

Authors:  Sithara S Wijeratne; Eric Botello; Hui-Chun Yeh; Zhou Zhou; Angela L Bergeron; Eric W Frey; Jay M Patel; Leticia Nolasco; Nancy A Turner; Joel L Moake; Jing-fei Dong; Ching-Hwa Kiang
Journal:  Phys Rev Lett       Date:  2013-03-05       Impact factor: 9.161

8.  Fluid shear induces conformation change in human blood protein von Willebrand factor in solution.

Authors:  Indrajeet Singh; Efrosyni Themistou; Lionel Porcar; Sriram Neelamegham
Journal:  Biophys J       Date:  2009-03-18       Impact factor: 4.033

9.  Mechanoenzymatic cleavage of the ultralarge vascular protein von Willebrand factor.

Authors:  Xiaohui Zhang; Kenneth Halvorsen; Cheng-Zhong Zhang; Wesley P Wong; Timothy A Springer
Journal:  Science       Date:  2009-06-05       Impact factor: 47.728

10.  Absence of ligands bound to glycoprotein IIB-IIIA on the exposed surface of a thrombus may limit thrombus growth in flowing blood.

Authors:  H F Heynen; M Lozano Molero; P G de Groot; H K Nieuwenhuis; J J Sixma
Journal:  J Clin Invest       Date:  1994-09       Impact factor: 14.808

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