Effects of flowing RBCs on adhesion of a circulating tumor cell in microvessels

被引:47
作者
Xiao, L. L. [1 ,2 ]
Liu, Y. [2 ]
Chen, S. [1 ]
Fu, B. M. [3 ]
机构
[1] Tongji Univ, Sch Aerosp Engn & Appl Mech, Shanghai, Peoples R China
[2] Hong Kong Polytech Univ, Dept Mech Engn, Hong Kong, Hong Kong, Peoples R China
[3] CUNY, Dept Biomed Engn, New York, NY 10021 USA
基金
中国国家自然科学基金;
关键词
Adhesion; Aggregation; Circulating tumor cell; Dissipative particle dynamics; Red blood cell; DISSIPATIVE PARTICLE DYNAMICS; LEUKOCYTE MARGINATION; SHEAR-FLOW; CANCER; ERYTHROCYTE; DEFORMATION; AGGREGATION; KINETICS; MICROVASCULATURE; METASTASIS;
D O I
10.1007/s10237-016-0839-5
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Adhesion of circulating tumor cells (CTCs) to the microvessel wall largely depends on the blood hydrodynamic conditions, one of which is the blood viscosity. Since blood is a non-Newtonian fluid, whose viscosity increases with hematocrit, in the microvessels at low shear rate. In this study, the effects of hematocrit, vessel size, flow rate and red blood cell (RBC) aggregation on adhesion of a CTC in the microvessels were numerically investigated using dissipative particle dynamics. The membrane of cells was represented by a spring-based network connected by elastic springs to characterize its deformation. RBC aggregation was modeled by a Morse potential function based on depletion-mediated assumption, and the adhesion of the CTC to the vessel wall was achieved by the interactions between receptors and ligands at the CTC and those at the endothelial cells forming the vessel wall. The results demonstrated that in the microvessel of 15 mu m diameter, the CTC has an increasing probability of adhesion with the hematocrit due to a growing wall-directed force, resulting in a larger number of receptor-ligand bonds formed on the cell surface. However, with the increase in microvessel size, an enhanced lift force at higher hematocrit detaches the initial adherent CTC quickly. If the microvessel is comparable to the CTC in diameter, CTC adhesion is independent of Hct. In addition, the velocity of CTC is larger than the average blood flow velocity in smaller microvessels and the relative velocity of CTC decreases with the increase in microvessel size. An increased blood flow resistance in the presence of CTC was also found. Moreover, it was found that the large deformation induced by high flow rate and the presence of aggregation promote the adhesion of CTC.
引用
收藏
页码:597 / 610
页数:14
相关论文
共 48 条
[21]   SIMULATING MICROSCOPIC HYDRODYNAMIC PHENOMENA WITH DISSIPATIVE PARTICLE DYNAMICS [J].
HOOGERBRUGGE, PJ ;
KOELMAN, JMVA .
EUROPHYSICS LETTERS, 1992, 19 (03) :155-160
[22]   Forces on a Wall-Bound Leukocyte in a Small Vessel Due to Red Cells in the Blood Stream [J].
Isfahani, Amir H. G. ;
Freund, Jonathan B. .
BIOPHYSICAL JOURNAL, 2012, 103 (07) :1604-1615
[23]   A physical sciences network characterization of circulating tumor cell aggregate transport [J].
King, Michael R. ;
Phillips, Kevin G. ;
Mitrugno, Annachiara ;
Lee, Tae-Rin ;
de Guillebon, Adelaide M. E. ;
Chandrasekaran, Siddarth ;
McGuire, Matthew J. ;
Carr, Russell T. ;
Baker-Groberg, Sandra M. ;
Rigg, Rachel A. ;
Kolatkar, Anand ;
Luttgen, Madelyn ;
Bethel, Kelly ;
Kuhn, Peter ;
Decuzzi, Paolo ;
McCarty, Owen J. T. .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2015, 308 (10) :C792-C802
[24]   Coupling of Navier-Stokes equations with protein molecular dynamics and its application to hemodynamics [J].
Liu, YL ;
Zhang, L ;
Wang, XD ;
Liu, WK .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2004, 46 (12) :1237-1252
[25]   Spatially gradated segregation and recovery of circulating tumor cells from peripheral blood of cancer patients [J].
Lv, Peitao ;
Tang, Zhewen ;
Liang, Xingjie ;
Guo, Mingzhou ;
Han, Ray P. S. .
BIOMICROFLUIDICS, 2013, 7 (03)
[26]   Measuring molecular elasticity by atomic force microscope cantilever fluctuations [J].
Marshall, BT ;
Sarangapani, KK ;
Wu, JH ;
Lawrence, MB ;
McEver, RP ;
Zhu, C .
BIOPHYSICAL JOURNAL, 2006, 90 (02) :681-692
[27]   Blood cell interactions and segregation in flow [J].
Munn, Lance L. ;
Dupin, Michael M. .
ANNALS OF BIOMEDICAL ENGINEERING, 2008, 36 (04) :534-544
[28]   Role of erythrocytes in leukocyte-endothelial interactions: Mathematical model and experimental validation [J].
Munn, LL ;
Melder, RJ ;
Jain, RK .
BIOPHYSICAL JOURNAL, 1996, 71 (01) :466-478
[29]   Red cell aggregation as a factor influencing margination and adhesion of leukocytes and platelets [J].
Nash, Gerard B. ;
Watts, Tim ;
Thornton, Colin ;
Barigou, Mostafa .
CLINICAL HEMORHEOLOGY AND MICROCIRCULATION, 2008, 39 (1-4) :303-310
[30]   A computational study of leukocyte adhesion and its effect on flow pattern in microvessels [J].
Pappu, Vijay ;
Doddi, Sai K. ;
Bagchi, Prosenjit .
JOURNAL OF THEORETICAL BIOLOGY, 2008, 254 (02) :483-498