Combined Simulation and Experimental Study of Large Deformation of Red Blood Cells in Microfluidic Systems

被引:0
作者
David J. Quinn
Igor Pivkin
Sophie Y. Wong
Keng-Hwee Chiam
Ming Dao
George Em Karniadakis
Subra Suresh
机构
[1] Massachusetts Institute of Technology,Department of Mechanical Engineering
[2] Massachusetts Institute of Technology,Department of Materials Science and Engineering
[3] Massachusetts Institute of Technology,Department of Biological Engineering
[4] A*STAR Institute of High Performance Computing (IHPC),Division of Applied Mathematics
[5] Brown University,undefined
来源
Annals of Biomedical Engineering | 2011年 / 39卷
关键词
Erythrocyte; Deformability; Temperature-dependent rheology;
D O I
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学科分类号
摘要
We investigate the biophysical characteristics of healthy human red blood cells (RBCs) traversing microfluidic channels with cross-sectional areas as small as 2.7 × 3 μm. We combine single RBC optical tweezers and flow experiments with corresponding simulations based on dissipative particle dynamics (DPD), and upon validation of the DPD model, predictive simulations and companion experiments are performed in order to quantify cell deformation and pressure–velocity relationships for different channel sizes and physiologically relevant temperatures. We discuss conditions associated with the shape transitions of RBCs along with the relative effects of membrane and cytosol viscosity, plasma environments, and geometry on flow through microfluidic systems at physiological temperatures. In particular, we identify a cross-sectional area threshold below which the RBC membrane properties begin to dominate its flow behavior at room temperature; at physiological temperatures this effect is less profound.
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页码:1041 / 1050
页数:9
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