Thromb Haemost 1979; 41(04): 648-654
DOI: 10.1055/s-0038-1646821
Original Articles
Schattauer GmbH Stuttgart

Fibrinogen: Agreement of Experimental and Calculated Hydrodynamic Data with Electron-Microscopic Models[*]

Eugene N Serrallach
*   The Department of Physics, ETH, 8093 Zürich, Switzerland
,
Victor E Hofmann
**   The Department of Medicine, University of Bern, 3010 Bern, Switzerland
,
Martin Zulauf
****   The Biozentrum, 4000 Basel, Switzerland
,
Thomas Binkert
***   The Department of Physics, University of Bern Switzerland
,
Robert Hofmann
*   The Department of Physics, ETH, 8093 Zürich, Switzerland
,
Werner Känzig
*   The Department of Physics, ETH, 8093 Zürich, Switzerland
,
P Werner Straub
**   The Department of Medicine, University of Bern, 3010 Bern, Switzerland
,
Robert Schwyzer
*****   The Institute of Molecular Biology and Biophysics, ETH, 8093 Zürich
› Author Affiliations
Further Information

Publication History

Publication Date:
09 July 2018 (online)

Summary

There is no general agreement on the size and shape of the fibrinogen molecule. We have studied the diffusion of the fibrinogen in solution by means of dynamic light scattering, nanosecond fluorescence depolarization and analytical ultracentrifugation. The results obtained under physiological concentration, pH an ionic strength are DT = 2.0 × 10-7 cm2sec-1, DR⊥ = 40’000 sec-1. Nanosecond fluorescence depolarization yielded DR// = 1.6 × 106 sec-1. Tentatively this value is interpreted as DR//, namely rotational diffusion about the major axis of the molecule. The sedimentation coefficient is 8.1 S. The hydrodynamic parameters derived from our measurements were compared with those calculated on the basis of the models proposed by Hall and Slayter, Hudry-Clergeon and Marguerie et al., Bachmann and Lederer, and Köppel.

The agreement is poor even if the degree of hydration is varied within wide limits. However, satisfactory agreement can be achieved by assuming a flexible molecule of about 900 Å length corresponding to two end-to-end bound trinodular structures of the Hall and Slayter type, with a nodule diameter of about 45 Å. Experimental evidence indicates that the discrepancies between the different models might be due to different techniques of sample preparation leading to different conformations of the molecule.

Presented at the workshop “Shape and Structure of Fibrinogen” Martinsried bei Miinchen, March 19, 1977


 
  • References

  • 1 Bachmann L, Schmit-Fumian WW, Hammel R, Lederer KK. 1975; Size and shape of fibrinogen. I. Electron microscopy of the hydrated molecule Die Makromolekulare Chemie 176: 2603
  • 2 Birnboim MH, Lederer K. 1972; Diffusion coefficient of bovine fibrinogen as measured by quasi-elastic light scattering. Polymer Preprints American Chemical Society 13: 203
  • 3 Chu B. 1974. Laser light scattering. Academic Press; New York:
  • 4 Hall CE, Slayter HS. 1959; The fibrinogen molecule: its size, shape and mode of polymerization. Journal of Biophysical and Biochemical Cytology 5: 11
  • 5 Hudry-Clergeon G, Marguerie G, Pourr L, Suscillon M. 1975; Models proposed for the fibrinogen molecule and for the polymerization process. Thrombosis Research 6: 1975
  • 6 Hocking CS, Laskowski Jr M, Scheraga HA. 1952; Size and shape of bovine fibrinogen. Journal of the American Chemical Society 74: 775
  • 7 Johnson P, Mihalyi E. 1965; Physicochemical studies of bovine fibrinogen. II. Depolarization of fluorescence studies Biochimica et Biophysica Acta 102: 476
  • 8 Kay D, Cuddigan J. 1967; The fine structure of fibrin. British Journal of Haematology 13: 341
  • 9 Koeppel G. 1966; Electron microscopic investigation of the shape of fibrinogen nodules: a model for certain proteins. Nature 212: 1608
  • 10 Lederer K, Hammel R. 1975; Größe und Gestalt des Fibrinogenmoleküls. 2. Röntgenkleinwin- kelstreuung an verdünnten Lösungen Die Makromolekulare Chemie 176: 2619
  • 11 Lederer K. 1975; Größe und Gestalt des Fibrinogenmoleküls. 3.Hydrodynamische Studien Die Makromolekulare Chemie 176: 2641
  • 12 Marguerie G, Stuhrmann HB. 1976; A neutron small-angle scattering study of bovine fibrinogen. Journal of Molecular Biology 102: 143
  • 13 Pike ER. 1972; The accuracy of diffusion constant measurements by digital autocorrelation of photon-counting fluctuations. Journal de Physique. Colloque Cl 33: 177
  • 14 Scheraga HH, Laskowski M. 1957; The fibrinogen-fibrin conversion. Adv. in Protein Chemistry 12: 1-131
  • 15 Serrallach E. 1977 Size, shape and intermolecular interactions of fibrinogen in solution. Thesis. Eidgenössische Technische Hochschule Zürich
  • 16 Shulman S. 1953; The size and shape of bovine fibrinogen. Studies of sedimentation, diffusion and viscosity Journal of the American Chemical Society 75: 5846
  • 17 Tinoco Jr I. 1955; The conversion of fibrinogen to fibrin. XVI. Electrical birefringence of fibrinogen and activated fibrinogen Journal of the American Chemical Society 77: 3476
  • 18 Tooney NM, Cohen C. 1977; Crystalline states of modified fibrinogen. Journal of Molecular Biology 110: 363
  • 19 Weber G. 1964. Polarized Fluorescence. In: Thoer AA, Sernetz M. (Ed.) Fluorescence Techniques in Cell Biology. Springer Verlag;