Journal of Biomechanics
Volume 35, Issue 9 , Pages 1241-1251 , September 2002

Reduced oxygen release from erythrocytes by the acceleration-induced flow shift, observed in an oxygen-permeable narrow tube

,Accepted 16 April 2002.

References 

  1. Alfrey CP, Udden MM, Leach-Huntoon C, Driscoll T, Pickett MH. Control of red blood cell mass in spaceflight. Journal of Applied Physiology. 1996;81:98–104
  2. Arbaille P, Achaibou F, Fomina G, Pottier JM, Porcher M. Regional blood flow in microgravity (adaptation and deconditioning). Medicine and Science in Sports and Exercise. 1996;28:S70–S79
  3. Baskurt OK, Mat F. Importance of measurement temperature in detecting the alterations of red blood cell aggregation and deformability studied by ektacytometry (a study on experimental sepsis in rats). Clinical Hemorheology and Microcirculation. 2000;23:43–49
  4. Blomqvist, C.G., Stone, H.L., 1983. Cardiovascular adjustments to gravitational stress. In: Shepherd, J.T., Abboud, F.M. (Eds.) Handbook of Physiology. The Cardiovascular Systems. Peripheral Circulation and Organ Blood Flow, Section 2, Vol. III, Pt. 2. American Physiological Society, Bethesda, MD, pp. 1025–1063 (Chapter 28).
  5. Ellsworth ML, Ellis CG, Popel AS, Pittman RN. Role of microvessels in oxygen supply to tissue. News in Physiological Sciences. 1994;9:119–123
  6. Gaehtgens P, Papenfuss HD. Effects of bifurcation on hematocrit reduction in the microcirculation. II. Experimental studies in narrow capillaries. Bibliotheca Anatomica. 1979;18:53–55
  7. Goldsmith HL. Red cell motions and wall interactions in tube flow. Federation Proceedings. 1971;30:1578–1588
  8. Goldsmith HL. The microrheology of human blood. Microvascular Research. 1986;31:121–142
  9. Fung YC. Biomechanics (Mechanical Properties of Living Tissues). New York: Springer; 1981;
  10. Hargens AR. Recent bed rest results and countermeasure development at NASA. Acta Physiologica Scandinavica. 1994;150(Suppl. 616):103–114
  11. Hargens AR, Watenpaugh DE. Cardiovascular adaptation to spaceflight. Medicine and Science in Sports and Exercise. 1996;28:977–982
  12. Hsia CC, Johnson RL, Shah D. Red cell distribution and the recruitment of pulmonary diffusing capacity. Journal of Applied Physiology. 1999;86:1460–1467
  13. Intaglietta M, Johnson PC, Winslow RM. Microvascular and tissue oxygen distribution. Cardiovascular Research. 1996;32:632–643
  14. Kubota K, Tamura J, Shirakura T, Kimura M, Yamanaka K, Isozaki T, et al. The behaviour of red cells in narrow tubes in vitro as a model of the microcirculation. British Journal of Haematology. 1996;94:266–272
  15. Lampe L, Wienhold K, Meyer G, Baisch F, Maass H, Hollmann W, et al. Effects of simulated microgravity (HDT) on blood fluidity. Journal of Applied Physiology. 1992;73:1366–1369
  16. Maeda N. Erythrocyte rheology in microcirculation. Japanese Journal of Physiology. 1996;46:1–14
  17. Maeda N, Shiga T. Velocity of oxygen transfer and erythrocyte rheology. News in Physiological Sciences. 1994;9:22–27
  18. Maeda N, Seike M, Shiga T. Effect of temperature on the velocity of erythrocyte aggregation. Biochimica et Biophysica Acta. 1987;904:319–329
  19. Maeda N, Suzuki Y, Tanaka J, Tateishi N. Erythrocyte flow and elasticity of microvessels evaluated by marginal cell-free layer and flow resistance. American Journal of Physiology. 1996;271:H2454–H2461
  20. Mchedlishvili G, Maeda N. Blood flow structure related to red cell flow (a determinant of blood fluidity in narrow microvessels). Japanese Journal of Physiology. 2001;51:19–30
  21. McKinnie RE, Olson JS. Effects of solvent composition and viscosity on the rates of CO binding to heme proteins. Journal of Biological Chemistry. 1981;256:8928–8932
  22. Nair PK, Huang NS, Hellums JD, Olson JS. A simple model for prediction of oxygen transport rates by flowing blood in large capillaries. Microvascular Research. 1990;39:203–211
  23. Palmer AA. Axial drift of cells and partial plasma skimming in blood flowing through glass slits. American Journal of Physiology. 1965;209:1115–1122
  24. Pries AR, Ley K, Claassen M, Gaehtgens P. Red cell distribution at microvascular bifurcations. Microvascular Research. 1989;38:81–101
  25. Soutani M, Suzuki Y, Tateishi N, Maeda N. Quantitative evaluation of flow dynamics of erythrocytes in microvessels (influence of erythrocyte aggregation). American Journal of Physiology. 1995;268:H1959–H1965
  26. Suzuki Y, Tateishi N, Soutani M, Maeda N. Flow behavior of erythrocytes in microvessels and glass capillaries (effect of erythrocyte deformation and erythrocyte aggregation). International Journal of Microcirculation. 1996;16:187–194
  27. Talbot JM, Fisher KD. Influence of space flight on red blood cells. Federation Proceedings. 1986;45:2285–2290
  28. Tateishi N, Maeda N, Shiga T. A method for measuring the rate of oxygen release from single microvessels. Circulation Research. 1992;70:812–819
  29. Tateishi N, Suzuki Y, Soutani M, Maeda N. Flow dynamics of erythrocytes in microvessels of isolated rabbit mesentery (cell-free layer and flow resistance). Journal of Biomechanics. 1994;27:1119–1125
  30. Tateishi N, Suzuki Y, Tanaka J, Maeda N. Imaging of oxygen saturation and distribution of erythrocytes in microvessels. Microcirculation. 1997;4:403–412
  31. Tateishi N, Suzuki Y, Cicha I, Maeda N. O2 release from erythrocytes flowing in a narrow O2-permeable tube (effect of erythrocyte aggregation). American Journal of Physiology. 2001;281:H448–H456
  32. Tipton CM. Animal models and their importance to human physiological responses in microgravity. Medicine and Science in Sports and Exercise. 1996;28:S94–S100

PII: S0021-9290(02)00068-4

Journal of Biomechanics
Volume 35, Issue 9 , Pages 1241-1251 , September 2002