Computational model of whole blood exhibiting lateral platelet motion induced by red blood cells

被引:83
作者
Crowl, Lindsay M. [1 ]
Fogelson, Aaron L. [1 ,2 ]
机构
[1] Univ Utah, Dept Math, Salt Lake City, UT 84112 USA
[2] Univ Utah, Dept Bioengn, Salt Lake City, UT 84112 USA
关键词
lattice Boltzmann methods; Immersed Boundary method; platelet near wall excess; red blood cell membrane mechanics; LATTICE-BOLTZMANN; WALL INTERACTIONS; SIZED PARTICLES; FLOWING BLOOD; DEFORMATION; SIMULATION; MEMBRANE; DEPENDENCE; DIFFUSION; TRANSPORT;
D O I
10.1002/cnm.1274
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
An Immersed Boundary method is developed in which the fluid's motion is calculated using the lattice Boltzmann method. The method is applied to explore the experimentally observed lateral redistribution of platelets and platelet-sized particles in concentrated suspensions of red blood cells undergoing channel flow. Simulations capture red-blood-cell-induced lateral platelet motion and the consequent development of a platelet concentration profile that includes an enhanced concentration within a few microns of the channel walls. In the simulations, the near-wall-enhanced concentration develops within approximately 400 ms starting from a random distribution of red blood cells and a uniform distribution of platelet-sized particles. Copyright (C) 2009 John Wiley & Sons, Ltd.
引用
收藏
页码:471 / 487
页数:17
相关论文
共 37 条
[1]   BLOOD-PLATELETS ARE CONCENTRATED NEAR THE WALL AND RED BLOOD-CELLS, IN THE CENTER IN FLOWING BLOOD [J].
AARTS, PAMM ;
VANDENBROEK, SAT ;
PRINS, GW ;
KUIKEN, GDC ;
SIXMA, JJ ;
HEETHAAR, RM .
ARTERIOSCLEROSIS, 1988, 8 (06) :819-824
[2]   Micro-scale dynamic simulation of erythrocyte-platelet interaction in blood flow [J].
AlMomani, T. ;
Udaykumar, H. S. ;
Marshall, J. S. ;
Chandran, K. B. .
ANNALS OF BIOMEDICAL ENGINEERING, 2008, 36 (06) :905-920
[3]   Mesoscale simulation of blood flow in small vessels [J].
Bagchi, Prosenjit .
BIOPHYSICAL JOURNAL, 2007, 92 (06) :1858-1877
[4]   Effect of constitutive laws for two-dimensional membranes on flow-induced capsule deformation [J].
Barthès-Biesel, D ;
Diaz, A ;
Dhenin, E .
JOURNAL OF FLUID MECHANICS, 2002, 460 :211-222
[5]  
BLACKSHEAR PL, 1971, FED PROC, V30, P1600
[6]   Simulation of swimming organisms: Coupling internal mechanics with external fluid dynamics [J].
Cortez, R ;
Fauci, L ;
Cowen, N ;
Dillon, R .
COMPUTING IN SCIENCE & ENGINEERING, 2004, 6 (03) :38-45
[7]   MODEL OF PLATELET TRANSPORT IN FLOWING BLOOD WITH DRIFT AND DIFFUSION TERMS [J].
ECKSTEIN, EC ;
BELGACEM, F .
BIOPHYSICAL JOURNAL, 1991, 60 (01) :53-69
[8]   CONDITIONS FOR THE OCCURRENCE OF LARGE NEAR-WALL EXCESSES OF SMALL PARTICLES DURING BLOOD-FLOW [J].
ECKSTEIN, EC ;
TILLES, AW ;
MILLERO, FJ .
MICROVASCULAR RESEARCH, 1988, 36 (01) :31-39
[9]   Tank-tread frequency of the red cell membrane: Dependence on the viscosity of the suspending medium [J].
Fischer, Thomas M. .
BIOPHYSICAL JOURNAL, 2007, 93 (07) :2553-2561
[10]   Flow volume asymmetry in the right aortic arch in children with magnetic resonance phase encoded velocity mapping [J].
Fogel, MA ;
Weinberg, PM ;
Haselgrove, J .
AMERICAN HEART JOURNAL, 2003, 145 (01) :154-161