Thromb Haemost 1983; 49(01): 047-050
DOI: 10.1055/s-0038-1657313
Original Article
Schattauer GmbH Stuttgart

High Resolution Electrophoretic Analysis of Human Fibrinogen and Its Crosslinked Intermediates

N A Carrell
The University of North Carolina School of Medicine, Depts. of Biochemistry, Pathology and Medicine, and Dental Research Center, Chapel Hill, NC, U.S.A.
,
J R Holahan
The University of North Carolina School of Medicine, Depts. of Biochemistry, Pathology and Medicine, and Dental Research Center, Chapel Hill, NC, U.S.A.
,
G C White
The University of North Carolina School of Medicine, Depts. of Biochemistry, Pathology and Medicine, and Dental Research Center, Chapel Hill, NC, U.S.A.
,
J McDonagh
The University of North Carolina School of Medicine, Depts. of Biochemistry, Pathology and Medicine, and Dental Research Center, Chapel Hill, NC, U.S.A.
› Author Affiliations
Further Information

Publication History

Received 20 July 1982

Accepted 15 December 1982

Publication Date:
18 July 2018 (online)

Summary

Heterogeneity in human fibrinogen was examined using an improved two-dimensional isoelectric focusing-SDS polyacrylamide gel electrophoretic procedure. Four different preparations of fibrinogen were compared: single donor fibrinogen prepared from plasma by precipitation with ammonium sulfate or by affinity chromatography on fibrin-monomer Sepharose, fraction I—4 prepared from Cohn fraction I paste, and Kabi grade L. The subunit Aα, Bβ, and γ chains in all preparations had marked charge heterogeneity. The three chains were clearly separated from each other and a range of isoelectric points for each chain could be assigned. Minor variations in the subunit heterogeneity of the different preparations were found. Intermediates in the transition from fibrinogen to crosslinked fibrin were also examined. A striking increase in the heterogeneity of the α chain was observed during crosslinking.

 
  • References

  • 1 Blombäck B, Blombäck M. Purification of human and bovine fibrinogen. Ark Kemi 1956; 10: 415-443
  • 2 Lipinska I, Lipinski B, Gurewich V. Fibrinogen heterogeneity in human plasma. Electrophoretic demonstration and characterization of two major fibrinogen components. J Lab Clin Med 1974; 84: 509-516
  • 3 Weinstein MJ, Deykin D. Low solubility fibrinogen examined by two-dimensional sodium dodecyl sulfate gel electrophoresis and isoelectric focusing. Thromb Res 1978; 13: 361-377
  • 4 Finlayson JS, Mosesson MW. Heterogeneity of human fibrinogen. Biochemistry 1963; 02: 42-46
  • 5 Mosesson MW, Finlayson JS, Umfleet RA, Galanakis D. Human fibrinogen heterogeneities I. Structural and related studies of plasma fibrinogens which are high solubility catabolic intermediates. J Biol Chem 1972; 247: 5210-5219
  • 6 Mosesson MW, Finlayson JS, Umfleet RA. Human fibrinogen heterogeneities III. Identification of γ chain variants. J Biol Chem 1972; 247: 5223-5227
  • 7 Francis CW, Marder VJ, Martin SE. Demonstration of a large molecular weight variant of the γ chain of normal human plasma fibrinogen. J Biol Chem 1980; 255: 5599-5604
  • 8 Ferguson EW. High-resolution two-dimensional electrophoretic analysis of fibrinogen digestion by plasmin. J Lab Clin Med 1980; 96: 710-721
  • 9 Kuyas C, Haeberli A, Straub PW. Sialic acid dependent polypeptide chain heterogeneity of human fibrinogen demonstrated by two-dimensional electrophoresis. Thromb Haemostas 1982; 47: 19-21
  • 10 Fowler WE, Erickson HP, Hantgan RR, McDonagh J, Hermans J. Cross-linked fibrinogen dimers demonstrate a feature of the molecular packing in fibrin fibers. Science 1981; 211: 287-289
  • 11 Gralnick HR, Givelber HM, Finlayson JS. A new congenital abnormality of human fibrinogen. Fibrinogen Bethesda II. Thrombos Diathes Haemorrh 1973; 29: 562-571
  • 12 Heene DL, Matthias FR. Adsorption of fibrinogen derivatives on insolubilized fibrinogen and fibrinmonomer. Thromb Res 1973; 02: 137-154
  • 13 Rider DM, McDonagh J. Resistance of factor XIII to degradation or activation by plasmin. Biochim Biophys Acta 1981; 675: 171-177
  • 14 Engvall E, Ruoslahti E. Binding of soluble form of fibroblast surface protein, fibronectin, to collagen. Int J Cancer 1977; 20: 1-5
  • 15 O’Farrell PH. High resolution two-dimensional electrophoresis of proteins. J Biol Chem 1975; 250: 4007-4021
  • 16 Laemmli UK. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 1970; 227: 680-685
  • 17 Hjerten S, Jerstedt S, Tiselius A. Apparatus for large-scale preparative polyacrylamide gel electrophoresis. Anal Biochem 1969; 27: 108-129
  • 18 Blombäck B, Hessel B, Iwanaga S, Reuterby J, Blombäck M. Primary structure of human fibrinogen and fibrin. J Biol Chem 1972; 247: 1496-1512