Literature DB >> 20188374

Confocal microscopy-based three-dimensional cell-specific modeling for large deformation analyses in cellular mechanics.

Noa Slomka1, Amit Gefen.   

Abstract

This study introduces a new confocal microscopy-based three-dimensional cell-specific finite element (FE) modeling methodology for simulating cellular mechanics experiments involving large cell deformations. Three-dimensional FE models of undifferentiated skeletal muscle cells were developed by scanning C2C12 myoblasts using a confocal microscope, and then building FE model geometries from the z-stack images. Strain magnitudes and distributions in two cells were studied when the cells were subjected to compression and stretching, which are used in pressure ulcer and deep tissue injury research to induce large cell deformations. Localized plasma membrane and nuclear surface area (NSA) stretches were observed for both the cell compression and stretching simulation configurations. It was found that in order to induce large tensile strains (>5%) in the plasma membrane and NSA, one needs to apply more than approximately 15% of global cell deformation in cell compression tests, or more than approximately 3% of tensile strains in the elastic plate substrate in cell stretching experiments. Utilization of our modeling can substantially enrich experimental cellular mechanics studies in classic cell loading designs that typically involve large cell deformations, such as static and cyclic stretching, cell compression, micropipette aspiration, shear flow and hydrostatic pressure, by providing magnitudes and distributions of the localized cellular strains specific to each setup and cell type, which could then be associated with the applied stimuli. Copyright (c) 2010 Elsevier Ltd. All rights reserved.

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Year:  2010        PMID: 20188374     DOI: 10.1016/j.jbiomech.2010.02.011

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


  12 in total

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7.  A computational approach to understand phenotypic structure and constitutive mechanics relationships of single cells.

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8.  Effects of Frequency and Acceleration Amplitude on Osteoblast Mechanical Vibration Responses: A Finite Element Study.

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9.  3D Reconstruction of Coronary Artery Vascular Smooth Muscle Cells.

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Journal:  PLoS One       Date:  2016-02-16       Impact factor: 3.240

10.  Immersed Boundary Models for Quantifying Flow-Induced Mechanical Stimuli on Stem Cells Seeded on 3D Scaffolds in Perfusion Bioreactors.

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Journal:  PLoS Comput Biol       Date:  2016-09-22       Impact factor: 4.475

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