Show simple item record

contributor authorTaly P. Appelman
contributor authorJoseph Mizrahi
contributor authorDror Seliktar
date accessioned2017-05-09T00:42:33Z
date available2017-05-09T00:42:33Z
date copyrightApril, 2011
date issued2011
identifier issn0148-0731
identifier otherJBENDY-27203#041010_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/145464
description abstractMechanically induced cell deformations have been shown to influence chondrocyte response in 3D culture. However, the relationship between the mechanical stimulation and cell response is not yet fully understood. In this study a finite element model was developed to investigate cell-matrix interactions under unconfined compression conditions, using a tissue engineered encapsulating hydrogel seeded with chondrocytes. Model predictions of stress and strain distributions within the cell and on the cell boundary were shown to exhibit space-dependent responses that varied with scaffold mechanical properties, the presence of a pericellular matrix (PCM), and the cell size. The simulations predicted that when the cells were initially encapsulated into the hydrogel scaffolds, the cell size hardly affected the magnitude of the stresses and strains that were reaching the encapsulated cells. However, with the inclusion of a PCM layer, larger cells experienced enhanced stresses and strains resulting from the mechanical stimulation. It was also noted that the PCM had a stress shielding effect on the cells in that the peak stresses experienced within the cells during loading were significantly reduced. On the other hand, the PCM caused the stresses at the cell-matrix interface to increase. Based on the model predictions, the PCM modified the spatial stress distribution within and around the encapsulated cells by redirecting the maximum stresses from the periphery of the cells to the cell nucleus. In a tissue engineered cartilage exposed to mechanical loading, the formation of a neo-PCM by encapsulated chondrocytes appears to protect them from initially excessive mechanical loading. Predictive models can thus shed important insight into how chondrocytes remodel their local environment in order to redistribute mechanical signals in tissue engineered constructs.
publisherThe American Society of Mechanical Engineers (ASME)
titleA Finite Element Model of Cell-Matrix Interactions to Study the Differential Effect of Scaffold Composition on Chondrogenic Response to Mechanical Stimulation
typeJournal Paper
journal volume133
journal issue4
journal titleJournal of Biomechanical Engineering
identifier doi10.1115/1.4003314
journal fristpage41010
identifier eissn1528-8951
keywordsDeformation
keywordsStress
keywordsEngineering simulation
keywordsFinite element model
keywordsHydrogels
keywordsChondrocytes
keywordsCartilage
keywordsEquations
keywordsBiological tissues
keywordsCompression
keywordsConstitutive equations AND Mechanical properties
treeJournal of Biomechanical Engineering:;2011:;volume( 133 ):;issue: 004
contenttypeFulltext


Files in this item

Thumbnail

This item appears in the following Collection(s)

Show simple item record