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Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells

Cell origami has been widely used in the field of three-dimensional (3D) cell-populated microstructures due to their multiple advantages, including high biocompatibility, the lack of special requirements for substrate materials, and the lack of damage to cells. A 3D finite element method (FEM) model...

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Detalles Bibliográficos
Autores principales: Wang, Lili, Chen, Weiyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6710780/
https://www.ncbi.nlm.nih.gov/pubmed/31485268
http://dx.doi.org/10.1155/2019/8541303
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author Wang, Lili
Chen, Weiyi
author_facet Wang, Lili
Chen, Weiyi
author_sort Wang, Lili
collection PubMed
description Cell origami has been widely used in the field of three-dimensional (3D) cell-populated microstructures due to their multiple advantages, including high biocompatibility, the lack of special requirements for substrate materials, and the lack of damage to cells. A 3D finite element method (FEM) model of an adherent cell based on the tensegrity structure is constructed to describe cell origami by using the principle of the origami folding technique and cell traction forces. Adherent cell models contain a cytoskeleton (CSK), which is primarily composed of microtubules (MTs), microfilaments (MFs), intermediate filaments (IFs), and a nucleoskeleton (NSK), which is mainly made up of the nuclear lamina and chromatin. The microplate is assumed to be an isotropic linear-elastic solid material with a flexible joint that is connected to the cell tensegrity structure model by spring elements representing focal adhesion complexes (FACs). To investigate the effects of the degree of complexity of the tensegrity structure and NSK on the folding angle of the microplate, four models are established in the study. The results demonstrate that the inclusion of the NSK can increase the folding angle of the microplate, indicating that the cell is closer to its physiological environment, while increased complexity can reduce the folding angle of the microplate since the folding angle is depended on the cell types. The proposed adherent cell FEM models are validated by comparisons with reported results. These findings can provide theoretical guidance for the application of biotechnology and the analysis of 3D structures of cells and have profound implications for the self-assembly of cell-based microscale medical devices.
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spelling pubmed-67107802019-09-04 Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells Wang, Lili Chen, Weiyi Appl Bionics Biomech Research Article Cell origami has been widely used in the field of three-dimensional (3D) cell-populated microstructures due to their multiple advantages, including high biocompatibility, the lack of special requirements for substrate materials, and the lack of damage to cells. A 3D finite element method (FEM) model of an adherent cell based on the tensegrity structure is constructed to describe cell origami by using the principle of the origami folding technique and cell traction forces. Adherent cell models contain a cytoskeleton (CSK), which is primarily composed of microtubules (MTs), microfilaments (MFs), intermediate filaments (IFs), and a nucleoskeleton (NSK), which is mainly made up of the nuclear lamina and chromatin. The microplate is assumed to be an isotropic linear-elastic solid material with a flexible joint that is connected to the cell tensegrity structure model by spring elements representing focal adhesion complexes (FACs). To investigate the effects of the degree of complexity of the tensegrity structure and NSK on the folding angle of the microplate, four models are established in the study. The results demonstrate that the inclusion of the NSK can increase the folding angle of the microplate, indicating that the cell is closer to its physiological environment, while increased complexity can reduce the folding angle of the microplate since the folding angle is depended on the cell types. The proposed adherent cell FEM models are validated by comparisons with reported results. These findings can provide theoretical guidance for the application of biotechnology and the analysis of 3D structures of cells and have profound implications for the self-assembly of cell-based microscale medical devices. Hindawi 2019-08-14 /pmc/articles/PMC6710780/ /pubmed/31485268 http://dx.doi.org/10.1155/2019/8541303 Text en Copyright © 2019 Lili Wang and Weiyi Chen. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Wang, Lili
Chen, Weiyi
Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title_full Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title_fullStr Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title_full_unstemmed Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title_short Modelling Cell Origami via a Tensegrity Model of the Cytoskeleton in Adherent Cells
title_sort modelling cell origami via a tensegrity model of the cytoskeleton in adherent cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6710780/
https://www.ncbi.nlm.nih.gov/pubmed/31485268
http://dx.doi.org/10.1155/2019/8541303
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