Blood Cell Interactions and Segregation in Flow
暂无分享,去创建一个
[1] R. Whitmore,et al. Theory of the flow of blood in narrow tubes. , 1958, Journal of applied physiology.
[2] R. Jain,et al. Low deformability of lymphokine-activated killer cells as a possible determinant of in vivo distribution. , 1989, Cancer research.
[3] A. Pries,et al. Two-Dimensional Simulation of Red Blood Cell Deformation and Lateral Migration in Microvessels , 2007, Annals of Biomedical Engineering.
[4] S. D. House,et al. Leukocyte endothelium adhesion and microvascular hemodynamics. , 1988, Advances in experimental medicine and biology.
[5] L. Chau,et al. Further comments on K0(K0) → 2γ , 1987 .
[6] Disease,et al. Vascular Endothelium in Health and Disease , 1988, Advances in Experimental Medicine and Biology.
[7] A. Pries,et al. Blood viscosity in tube flow: dependence on diameter and hematocrit. , 1992, The American journal of physiology.
[8] Jennifer S. Park,et al. Red Blood Cells , 2009 .
[9] L. McIntire,et al. Effects of fluid dynamic forces on vascular cell adhesion. , 1996, The Journal of clinical investigation.
[11] T. Springer,et al. Leukocytes roll on a selectin at physiologic flow rates: Distinction from and prerequisite for adhesion through integrins , 1991, Cell.
[12] M J Pearson,et al. Influence of erythrocyte aggregation on leukocyte margination in postcapillary venules of rat mesentery. , 2000, American journal of physiology. Heart and circulatory physiology.
[13] S. G. Mason,et al. Axial Migration of Particles in Poiseuille Flow , 1961, Nature.
[14] Lance L. Munn,et al. Lattice-Boltzmann simulation of blood flow in digitized vessel networks , 2008, Comput. Math. Appl..
[15] Michael M. Dupin,et al. Tumor vessel abnormalities affect blood cell dynamics and flow distribution , 2006 .
[16] Sergey S Shevkoplyas,et al. Biomimetic autoseparation of leukocytes from whole blood in a microfluidic device. , 2005, Analytical chemistry.
[17] R K Jain,et al. Determinants of tumor blood flow: a review. , 1988, Cancer research.
[18] S. Chien. The Benjamin W. Zweifach Award Lecture. Blood cell deformability and interactions: from molecules to micromechanics and microcirculation. , 1992, Microvascular research.
[19] B. Chen,et al. DNA microarray analysis of gene expression in endothelial cells in response to 24-h shear stress. , 2001, Physiological genomics.
[20] S Chien,et al. Blood Viscosity: Influence of Erythrocyte Aggregation , 1967, Science.
[21] G. Cokelet,et al. Decreased Hydrodynamic Resistance in the Two‐Phase Flow of Blood Through Small Vertical Tubes at Low Flow Rates , 1991, Circulation research.
[22] S. G. Mason,et al. The flow of suspensions through tubes. II. Single large bubbles , 1963 .
[23] H. Goldsmith,et al. Effect of red blood cells and their aggregates on platelets and white cells in flowing blood. , 1999, Biorheology.
[24] S Neelamegham,et al. Venous levels of shear support neutrophil-platelet adhesion and neutrophil aggregation in blood via P-selectin and beta2-integrin. , 1998, Circulation.
[25] H. Goldsmith,et al. Margination of leukocytes in blood flow through small tubes. , 1984, Microvascular research.
[26] A. Popel,et al. Effects of erythrocyte aggregation and venous network geometry on red blood cell axial migration. , 2001, American journal of physiology. Heart and circulatory physiology.
[27] L V McIntire,et al. Flow effects on prostacyclin production by cultured human endothelial cells. , 1985, Science.
[28] Axel R. Pries,et al. Microcirculatory Network Structures and Models , 2000, Annals of Biomedical Engineering.
[29] G. Segré,et al. Radial Particle Displacements in Poiseuille Flow of Suspensions , 1961, Nature.
[30] F. C. Macintosh,et al. Flow behaviour of erythrocytes - I. Rotation and deformation in dilute suspensions , 1972, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[31] Robin Fåhræus,et al. THE VISCOSITY OF THE BLOOD IN NARROW CAPILLARY TUBES , 1931 .
[32] F. Hosoda,et al. A BAC-based STS-content map spanning a 35-Mb region of human chromosome 1p35-p36. , 2001, Genomics.
[33] G. Cokelet,et al. Flow resistance and drag forces due to multiple adherent leukocytes in postcapillary vessels. , 1998, Biophysical journal.
[34] A. Popel,et al. Computational fluid dynamic studies of leukocyte adhesion effects on non-Newtonian blood flow through microvessels. , 2000, Biorheology.
[35] S Chien,et al. The interaction of leukocytes and erythrocytes in capillary and postcapillary vessels. , 1980, Microvascular research.
[36] Goldsmith,et al. Robin Fåhraeus: evolution of his concepts in cardiovascular physiology. , 1989, The American journal of physiology.
[37] Goldsmith Hl,et al. Red cell motions and wall interactions in tube flow. , 1971 .
[38] R. Skalak,et al. Mechanisms for increased blood flow resistance due to leukocytes. , 1997, The American journal of physiology.
[39] Lance L. Munn,et al. Influence of erythrocyte aggregation on leukocyte margination in postcapillary expansions: A lattice Boltzmann analysis , 2006 .
[40] R K Jain,et al. Role of erythrocytes in leukocyte-endothelial interactions: mathematical model and experimental validation. , 1996, Biophysical journal.
[41] Y. Fung,et al. Vascular Endothelium‐Leukocyte Interaction: STICKING SHEAR FORCE IN VENULES , 1975, Circulation research.
[42] M Intaglietta,et al. Effect of erythrocyte aggregation on velocity profiles in venules. , 2001, American journal of physiology. Heart and circulatory physiology.
[43] J. Moake,et al. Platelets and shear stress. , 1996, Blood.
[44] H. Goldsmith,et al. Flow Patterns in Vessels of Simple and Complex Geometries a , 1987, Annals of the New York Academy of Sciences.
[45] H. Goldsmith,et al. Physical and chemical effects of red cells in the shear-induced aggregation of human platelets. , 1995, Biophysical journal.
[46] L. Munn,et al. Red blood cells initiate leukocyte rolling in postcapillary expansions: a lattice Boltzmann analysis. , 2003, Biophysical journal.
[47] Lei Xu,et al. Kinetics of vascular normalization by VEGFR2 blockade governs brain tumor response to radiation: role of oxygenation, angiopoietin-1, and matrix metalloproteinases. , 2004, Cancer cell.
[48] C. Smith,et al. Anionic amino acid uptake by microvillous membrane vesicles from human placenta. , 1989, The American journal of physiology.
[49] H. Goldsmith,et al. Interactions of Human Blood Cells with the Vascular Endothelium a , 1987, Annals of the New York Academy of Sciences.
[50] H. Goldsmith,et al. Flow behavior of erythrocytes. II. Particle motions in concentrated suspensions of ghost cells , 1979 .
[51] H. Goldsmith,et al. Behavior of model particles and blood cells at spherical obstructions in tube flow. , 1973, Microvascular research.
[52] S. G. Mason,et al. The flow of suspensions through tubes 1VIII. Radial Migration of Particles in Pulsatile Flow , 1968 .
[53] G. I. Bell. Models for the specific adhesion of cells to cells. , 1978, Science.
[54] Rakesh K Jain,et al. Red blood cells augment leukocyte rolling in a virtual blood vessel. , 2002, Biophysical journal.
[55] Scott I. Simon,et al. Leukocyte Adhesion Dynamics in Shear Flow , 2002, Annals of Biomedical Engineering.
[56] S. Weinbaum,et al. Dynamic contact forces on leukocyte microvilli and their penetration of the endothelial glycocalyx. , 2001, Biophysical journal.
[57] Ricky T. Tong,et al. Direct evidence that the VEGF-specific antibody bevacizumab has antivascular effects in human rectal cancer , 2004, Nature Medicine.
[58] R. Jain,et al. Non-Uniform Plasma Leakage Affects Local Hematocrit and Blood Flow: Implications for Inflammation and Tumor Perfusion , 2007, Annals of Biomedical Engineering.
[59] R. Jain,et al. Transparent Window Models and Intravital Microscopy , 2002 .
[60] L V McIntire,et al. Platelet active concentration profiles near growing thrombi. A mathematical consideration. , 1986, Biophysical journal.
[61] B. Dasa,et al. Computational fluid dynamic studies of leukocyte adhesion effects on non-Newtonian blood flow through microvessels , 2000 .
[62] H. Goldsmith,et al. Flow behaviour of blood cells and rigid spheres in an annular vortex. , 1977, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[63] L. McIntire,et al. Microaggregate formation in whole blood exposed to shear stress. , 1978, Microvascular research.
[64] M. N. Myers,et al. SEPARATION BEHAVIOR OF BLOOD CELLS IN SEDIMENTATION FIELD-FLOW FRACTIONATION , 1999 .
[65] S. G. Mason,et al. The flow of suspensions through tubes. I. Single spheres, rods, and discs , 1962 .
[66] B. Chen,et al. DNA microarray analysis of gene expression in endothelial cells in response to 24-h shear stress. , 2001, Physiological genomics.
[67] Robin Fåhrœus.,et al. The Suspension‐stability of the Blood. , 2009 .
[68] M. Dupin,et al. Modeling the flow of dense suspensions of deformable particles in three dimensions. , 2007, Physical review. E, Statistical, nonlinear, and soft matter physics.
[69] R. Skalak,et al. Leukocyte deformability: finite element modeling of large viscoelastic deformation. , 1992, Journal of theoretical biology.
[70] S. Chien,et al. Blood Viscosity: Influence of Erythrocyte Deformation , 1967, Science.
[71] L. Munn,et al. Particulate nature of blood determines macroscopic rheology: a 2-D lattice Boltzmann analysis. , 2005, Biophysical journal.
[72] Goldsmith Hl,et al. Further comments on the radial migration of spheres in Poiseuille flow. , 1965 .
[73] Goldsmith Hl. Microscopic flow properties of red cells. , 1967 .
[74] S. Jalkanen,et al. Interactions between endothetial cells and leukocytes , 1986, Journal of cellular biochemistry.
[75] Shu Chien,et al. Handbook of Bioengineering , 1986 .
[76] H. Mayrovitz,et al. Leukocyte adherence initiation in skeletal muscle capillaries and venules. , 1987, Microvascular research.
[77] P. Gaehtgens,et al. Blood viscosity in small tubes: effect of shear rate, aggregation, and sedimentation. , 1987, The American journal of physiology.