Biomedical Engineering Reference
In-Depth Information
[42] Kastrup C.J., Shen F., Runyon M.K., Ismagilov R.F.: Charaterization of the threshold re-
sponse of initiation of blood clotting to stimulus patch size. Biophysical Journal 93 : 2969-
2977, 2007.
[43] Kelton J.G., Warkentin T.E.: Heparin-induced thrombocytopenia. Blood 112 : 2607-2616,
2008.
[44] Khanin M.A., Semenov V.V.: A mathematical model of the kinetics of blood coagulation.
Journal of Theoretical Biology 136 : 127-134, 1989.
[45] Kuharsky A.L., Fogelson A.L.: Surface-mediated control of blood coagulation: The role of
binding site densities and platelet deposition. Biophysical Journal 80 : 1050-1074, 2001.
[46] Lawrence M.B., Springer T.A.: Leukocytes roll on a seletion at physiologic flow rates: dis-
tinction from and prerequisite for adhesion through integrins. Cell 65 : 859-873, 1991.
[47] Levine S.N.: Enzyme amplifier kinetics. Science 152 : 651-653, 1966.
[48] Macfarlane R.G.: An enzyme cascade in the blood clotting mechanism, and its function as a
biochemical amplifier. Nature 202 : 498, 1964.
[49] Mann K.G.: Adding the vessel wall to Virchow's triad. Journal of Thrombosis and Haemosta-
sis 4 : 58-59, 2006.
[50] Mann K.G., Brummel-Ziedins K., Orfeo T., Butenas S.: Models of blood coagulation. Blood
Cells, Molecules and Diseases 36 : 108-117, 2006.
[51] Mann K.G., Butenas S., Brummel K.: The dynamics of thrombin formation. Arteriosclerosis
Thrombosis and Vascular Biology 23 : 17-25, 2003.
[52] Martorana F., Moro A.: On the kinetics of enzyme amplifier systems with negative feedback.
Mathematical Biosciences 21 : 77-84, 1974.
[53] Michaelis L., Menten M.L.: Die kinetik der invertinwirkung. Biochem. Z. 49 : 333-369, 1913.
[54] Morawitz P.: Die chemie der blutgerinnung. Ergebn. Physiol. 4 : 307-422, 1905.
[55] Moro A., Bharucha-Reid A.T.: On the kinetics of enzyme amplifier systems. Mathematical
Biosciences 5 : 391-402, 1969.
[56] Naito K., Fujikawa K.; Activation of human blood coagulation Factor XI independent of
Factor XII. J. Biolog. Chemistry 266 (12): 7353-7358, 1991.
[57] Obraztsov I.F., Kardakov D.V., Kogan A.E., Khanin M.A. A mathematical model of the back-
ground state of the blood coagulation system. Doklady Biochemistry and Biophysics 376 :
10-12, 2001.
[58] Obraztsov I.F., Kuz'min V.M., Khanin M.A.: Blood coagulation dynamics under the con-
ditions of Hageman factor deficiency: A mathematical model. Doklady Biochemistry and
Biophysics 386 : 248-250, 2002.
[59] Ovanesov M.V., Krasotkina J.V., Ul'yanova L.I., Abushinova K.V., Plyushch O.P., Domo-
gatskii S.P., Vorob'ev A.I., Ataullakhanov. F.I.: Hemophilia A and B are associated with
abnormal spatial dynamics of clot growth. Biochem. Biophys. Acta 1572 (1): 45-57, 2002.
[60] Owen Jr. C.A.: A History of Blood Coagulation. Mayo Foundation for Medical Education
and Research, 2001.
[61] Owens R.G.: A new microstructure-based constitutive model for human blood. J. Non-
Newtonian Fluid Mech. 140 : 57-70, 2006.
[62] Owren P.A.: Parahaemophilia. Haemorragic diathesis due to absence of a previously unknown
clotting factor. Lancet 1 : 446-451, 1947.
[63] Panes O., Matus V., Saez C.G., Quiroga T., Pereira J., Mezzano D.: Human platelets synthe-
size and express functional tissue fractor. Blood 109 , 5242-5250, 2007.
[64] Panteleev M.A., Ovanesov M.V., Kireev D.A., Shibeko A.M., Sinauridze E.I., Ananyeva
N.M., Butylin A.A., Saenko E.L., Ataullakhanov F.I.: Spatial propagation and localization of
blood coagulation are regulated by intrinsic and protein C pathways, respectively. Biophysical
Journal 90 : 1489-1500, 2006.
[65] Peskin C.S.: The immersed boundary method. Acta Numerica 11 : 479-517, 2002.
[66] Podmore A., Smith M., Savidge G., Alhaq A.: Real-time quantitative PCR analysis of factor
XI mRNA variants in human platelets. J. Thrombosis and Haemosthasis 2 : 1713-1719, 2004.
[67] Provan D., Gribben J.B. (eds.): Molecular Hematology. Wiley-Blackwell, third edition, 2010.
Search WWH ::




Custom Search