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    Mechanical Characterization of Differentiated Human Embryonic Stem Cells

    Source: Journal of Biomechanical Engineering:;2009:;volume( 131 ):;issue: 006::page 61011
    Author:
    Eugene J. Koay
    ,
    Jerry C. Hu
    ,
    Patrick Lin
    ,
    Kyriacos A. Athanasiou
    ,
    Gidon Ofek
    ,
    Vincent P. Willard
    DOI: 10.1115/1.3127262
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Human embryonic stem cells (hESCs) possess an immense potential in a variety of regenerative applications. A firm understanding of hESC mechanics, on the single cell level, may provide great insight into the role of biophysical forces in the maintenance of cellular phenotype and elucidate mechanical cues promoting differentiation along various mesenchymal lineages. Moreover, cellular biomechanics can provide an additional tool for characterizing stem cells as they follow certain differentiation lineages, and thus may aid in identifying differentiated hESCs, which are most suitable for tissue engineering. This study examined the viscoelastic properties of single undifferentiated hESCs, chondrogenically differentiated hESC subpopulations, mesenchymal stem cells (MSCs), and articular chondrocytes (ACs). hESC chondrogenesis was induced using either transforming growth factor-β1(TGF-β1) or knock out serum replacer as differentiation agents, and the resulting cell populations were separated based on density. All cell groups were mechanically tested using unconfined creep cytocompression. Analyses of subpopulations from all differentiation regimens resulted in a spectrum of mechanical and morphological properties spanning the range of hESCs to MSCs to ACs. Density separation was further successful in isolating cellular subpopulations with distinct mechanical properties. The instantaneous and relaxed moduli of subpopulations from TGF-β1 differentiation regimen were statistically greater than those of undifferentiated hESCs. In addition, two subpopulations from the TGF-β1 group were identified, which were not statistically different from native articular chondrocytes in their instantaneous and relaxed moduli, as well as their apparent viscosity. Identification of a differentiated hESC subpopulation with similar mechanical properties as native chondrocytes may provide an excellent cell source for tissue engineering applications. These cells will need to withstand any mechanical stimulation regimen employed to augment the mechanical and biochemical characteristics of the neotissue. Density separation was effective at purifying distinct populations of cells. A differentiated hESC subpopulation was identified with both similar mechanical and morphological characteristics as ACs. Future research may utilize this cell source in cartilage regeneration efforts.
    keyword(s): Density , Force , Creep , Separation (Technology) , Mechanical properties , Cartilage , Chondrocytes , Stem cells , Tissue engineering , Viscosity , Biological tissues , Cellular mechanics AND Stress ,
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      Mechanical Characterization of Differentiated Human Embryonic Stem Cells

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    https://yetl.yabesh.ir/yetl1/handle/yetl/139935
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    • Journal of Biomechanical Engineering

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    contributor authorEugene J. Koay
    contributor authorJerry C. Hu
    contributor authorPatrick Lin
    contributor authorKyriacos A. Athanasiou
    contributor authorGidon Ofek
    contributor authorVincent P. Willard
    date accessioned2017-05-09T00:31:41Z
    date available2017-05-09T00:31:41Z
    date copyrightJune, 2009
    date issued2009
    identifier issn0148-0731
    identifier otherJBENDY-26966#061011_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/139935
    description abstractHuman embryonic stem cells (hESCs) possess an immense potential in a variety of regenerative applications. A firm understanding of hESC mechanics, on the single cell level, may provide great insight into the role of biophysical forces in the maintenance of cellular phenotype and elucidate mechanical cues promoting differentiation along various mesenchymal lineages. Moreover, cellular biomechanics can provide an additional tool for characterizing stem cells as they follow certain differentiation lineages, and thus may aid in identifying differentiated hESCs, which are most suitable for tissue engineering. This study examined the viscoelastic properties of single undifferentiated hESCs, chondrogenically differentiated hESC subpopulations, mesenchymal stem cells (MSCs), and articular chondrocytes (ACs). hESC chondrogenesis was induced using either transforming growth factor-β1(TGF-β1) or knock out serum replacer as differentiation agents, and the resulting cell populations were separated based on density. All cell groups were mechanically tested using unconfined creep cytocompression. Analyses of subpopulations from all differentiation regimens resulted in a spectrum of mechanical and morphological properties spanning the range of hESCs to MSCs to ACs. Density separation was further successful in isolating cellular subpopulations with distinct mechanical properties. The instantaneous and relaxed moduli of subpopulations from TGF-β1 differentiation regimen were statistically greater than those of undifferentiated hESCs. In addition, two subpopulations from the TGF-β1 group were identified, which were not statistically different from native articular chondrocytes in their instantaneous and relaxed moduli, as well as their apparent viscosity. Identification of a differentiated hESC subpopulation with similar mechanical properties as native chondrocytes may provide an excellent cell source for tissue engineering applications. These cells will need to withstand any mechanical stimulation regimen employed to augment the mechanical and biochemical characteristics of the neotissue. Density separation was effective at purifying distinct populations of cells. A differentiated hESC subpopulation was identified with both similar mechanical and morphological characteristics as ACs. Future research may utilize this cell source in cartilage regeneration efforts.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleMechanical Characterization of Differentiated Human Embryonic Stem Cells
    typeJournal Paper
    journal volume131
    journal issue6
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.3127262
    journal fristpage61011
    identifier eissn1528-8951
    keywordsDensity
    keywordsForce
    keywordsCreep
    keywordsSeparation (Technology)
    keywordsMechanical properties
    keywordsCartilage
    keywordsChondrocytes
    keywordsStem cells
    keywordsTissue engineering
    keywordsViscosity
    keywordsBiological tissues
    keywordsCellular mechanics AND Stress
    treeJournal of Biomechanical Engineering:;2009:;volume( 131 ):;issue: 006
    contenttypeFulltext
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