Literature DB >> 26706720

Continuum modeling of deformation and aggregation of red blood cells.

Daegeun Yoon1, Donghyun You2.   

Abstract

In order to gain better understanding for rheology of an isolated red blood cell (RBC) and a group of multiple RBCs, new continuum models for describing mechanical properties of cellular structures of an RBC and inter-cellular interactions among multiple RBCs are developed. The viscous property of an RBC membrane, which characterizes dynamic behaviors of an RBC under stress loading and unloading processes, is determined using a generalized Maxwell model. The present model is capable of predicting stress relaxation and stress-strain hysteresis, of which prediction is not possible using the commonly used Kelvin-Voigt model. Nonlinear elasticity of an RBC is determined using the Yeoh hyperelastic material model in a framework of continuum mechanics using finite-element approximation. A novel method to model inter-cellular interactions among multiple adjacent RBCs is also developed. Unlike the previous modeling approaches for aggregation of RBCs, where interaction energy for aggregation is curve-fitted using a Morse-type potential function, the interaction energy is analytically determined. The present aggregation model, therefore, allows us to predict various effects of physical parameters such as the osmotic pressure, the thickness of a glycocalyx layer, the penetration depth, and the permittivity, on the depletion and electrostatic energy among RBCs. Simulations for elongation and recovery deformation of an RBC and for aggregation of multiple RBCs are conducted to evaluate the efficacy of the present continuum modeling methods.
Copyright © 2015 Elsevier Ltd. All rights reserved.

Keywords:  Aggregation; Continuum model; Deformation; Red blood cell

Mesh:

Year:  2015        PMID: 26706720     DOI: 10.1016/j.jbiomech.2015.11.027

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  5 in total

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Authors:  Sumith Yesudasan; Xianqiao Wang; Rodney D Averett
Journal:  J Biomol Struct Dyn       Date:  2017-05-22

2.  Mechanics of Bacterial Interaction and Death on Nanopatterned Surfaces.

Authors:  Amar Velic; Jafar Hasan; Zhiyong Li; Prasad K D V Yarlagadda
Journal:  Biophys J       Date:  2020-12-15       Impact factor: 4.033

3.  A coarse-grained red blood cell membrane model to study stomatocyte-discocyte-echinocyte morphologies.

Authors:  Nadeeshani Maheshika Geekiyanage; Marie Anne Balanant; Emilie Sauret; Suvash Saha; Robert Flower; Chwee Teck Lim; YuanTong Gu
Journal:  PLoS One       Date:  2019-04-19       Impact factor: 3.240

4.  Sensing and Modelling Mechanical Response in Large Deformation Indentation of Adherent Cell Using Atomic Force Microscopy.

Authors:  Tianyao Shen; Bijan Shirinzadeh; Yongmin Zhong; Julian Smith; Joshua Pinskier; Mohammadali Ghafarian
Journal:  Sensors (Basel)       Date:  2020-03-22       Impact factor: 3.576

5.  Surface area-to-volume ratio, not cellular viscoelasticity, is the major determinant of red blood cell traversal through small channels.

Authors:  Arman Namvar; Adam J Blanch; Matthew W Dixon; Olivia M S Carmo; Boyin Liu; Snigdha Tiash; Oliver Looker; Dean Andrew; Li-Jin Chan; Wai-Hong Tham; Peter V S Lee; Vijay Rajagopal; Leann Tilley
Journal:  Cell Microbiol       Date:  2020-10-07       Impact factor: 4.115

  5 in total

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