Two-dimensional Finite Element Model of Breast Cancer Cell Motion Through a Microfluidic Channel

被引:8
作者
Barber, Jared [1 ]
Zhu, Luoding [1 ]
机构
[1] Indiana Univ Purdue Univ, Dept Math Sci, Indianapolis, IN 46202 USA
关键词
Breast cancer cell dynamics; Viscoelastic elements; Membrane mechanics; Finite element modeling; CIRCULATING TUMOR-CELLS; NUMERICAL-SIMULATION; P-CADHERIN; BLOOD; FLOW; MECHANOTRANSDUCTION; DEFORMABILITY; DEFORMATION;
D O I
10.1007/s11538-018-00557-x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
A two-dimensional model for red blood cell motion is adapted to consider the dynamics of breast cancer cells in a microfluidic channel. Adjusting parameters to make the membrane stiffer, as is the case with breast cancer cells compared with red blood cells, allows the model to produce reasonable estimates of breast cancer cell trajectories through the channel. In addition, the model produces estimates of quantities not as easily obtained from experiment such as velocity and stress field information throughout the fluid and on the cell membrane. This includes locations of maximum stress along the membrane wall. A sensitivity analysis shows that the model is capable of producing useful insights into various systems involving breast cancer cells. Current results suggest that dynamics taking place when cells are near other objects are most sensitive to membrane and cytoplasm elasticity, dynamics taking place when cells are not near other objects are most sensitive to cytoplasm viscosity, and dynamics are significantly affected by low membrane bending elasticity. These results suggest that continued calibration and application of this model can yield useful predictions in other similar systems.
引用
收藏
页码:1238 / 1259
页数:22
相关论文
共 38 条
[1]  
[Anonymous], 2009, THESIS
[2]  
[Anonymous], 2018, FLEXPDE 7 VERS 7 08
[3]   Simulated two-dimensional red blood cell motion, deformation, and partitioning in microvessel bifurcations [J].
Barber, Jared O. ;
Alberding, Jonathan P. ;
Restrepo, Juan M. ;
Secomb, Timothy W. .
ANNALS OF BIOMEDICAL ENGINEERING, 2008, 36 (10) :1690-1698
[4]  
Barber Jared O, 2011, Cardiovasc Eng Technol, V2, P349
[5]   GPU-accelerated red blood cells simulations with transport dissipative particle dynamics [J].
Blumers, Ansel L. ;
Tang, Yu-Hang ;
Li, Zhen ;
Li, Xuejin ;
Karniadakis, George E. .
COMPUTER PHYSICS COMMUNICATIONS, 2017, 217 :171-179
[6]   Mechanotransduction in cancer [J].
Chin, LiKang ;
Xia, Yuntao ;
Discher, Dennis E. ;
Janmey, Paul A. .
CURRENT OPINION IN CHEMICAL ENGINEERING, 2016, 11 :77-84
[7]   Computational model of whole blood exhibiting lateral platelet motion induced by red blood cells [J].
Crowl, Lindsay M. ;
Fogelson, Aaron L. .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN BIOMEDICAL ENGINEERING, 2010, 26 (3-4) :471-487
[8]   Numerical simulation of isolation of cancer cells in a microfluidic chip [J].
Djukic, T. ;
Topalovic, M. ;
Filipovic, N. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2015, 25 (08)
[9]   LEUKOCYTE DEFORMABILITY - FINITE-ELEMENT MODELING OF LARGE VISCOELASTIC DEFORMATION [J].
DONG, C ;
SKALAK, R .
JOURNAL OF THEORETICAL BIOLOGY, 1992, 158 (02) :173-193
[10]   Aspiration of human neutrophils: Effects of shear thinning and cortical dissipation [J].
Drury, JL ;
Dembo, M .
BIOPHYSICAL JOURNAL, 2001, 81 (06) :3166-3177