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    Spatiotemporal Measurement of Freezing-Induced Deformation of Engineered Tissues

    Source: Journal of Biomechanical Engineering:;2010:;volume( 132 ):;issue: 003::page 31003
    Author:
    Ka Yaw Teo
    ,
    J. Craig Dutton
    ,
    Bumsoo Han
    DOI: 10.1115/1.4000875
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In order to cryopreserve functional engineered tissues (ETs), the microstructure of the extracellular matrix (ECM) should be maintained, as well as the cellular viability since the functionality is closely related to the ECM microstructure. Since the post-thaw ECM microstructure is determined by the deformation of ETs during cryopreservation, freezing-induced deformation of ETs was measured with a newly developed quantum dot (QD)-mediated cell image deformetry system using dermal equivalents as a model tissue. The dermal equivalents were constructed by seeding QD-labeled fibroblasts in type I collagen matrices. After 24 h incubation, the ETs were directionally frozen by exposing them to a spatial temperature gradient (from 4°C to −20°C over a distance of 6 mm). While being frozen, the ETs were consecutively imaged, and consecutive pairs of these images were two-dimensionally cross-correlated to determine the local deformation during freezing. The results showed that freezing induced the deformation of ET, and its magnitude varied with both time and location. The maximum local dilatation was 0.006 s−1 and was always observed at the phase change interface. Due to this local expansion, the unfrozen region in front of the freezing interface experienced compression. This expansion-compression pattern was observed throughout the freezing process. In the unfrozen region, the deformation rate gradually decreased away from the freezing interface. After freezing/thawing, the ET experienced an approximately 28% decrease in thickness and 8% loss in weight. These results indicate that freezing-induced deformation caused the transport of interstitial fluid, and the interstitial fluid was extruded. In summary, the results suggest that complex cell-fluid-matrix interactions occur within ETs during freezing, and these interactions determine the post-thaw ECM microstructure and eventual post-thaw tissue functionality.
    keyword(s): Deformation , Freezing , Biological tissues AND Thickness ,
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      Spatiotemporal Measurement of Freezing-Induced Deformation of Engineered Tissues

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    http://yetl.yabesh.ir/yetl1/handle/yetl/142649
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    • Journal of Biomechanical Engineering

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    contributor authorKa Yaw Teo
    contributor authorJ. Craig Dutton
    contributor authorBumsoo Han
    date accessioned2017-05-09T00:36:40Z
    date available2017-05-09T00:36:40Z
    date copyrightMarch, 2010
    date issued2010
    identifier issn0148-0731
    identifier otherJBENDY-27115#031003_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/142649
    description abstractIn order to cryopreserve functional engineered tissues (ETs), the microstructure of the extracellular matrix (ECM) should be maintained, as well as the cellular viability since the functionality is closely related to the ECM microstructure. Since the post-thaw ECM microstructure is determined by the deformation of ETs during cryopreservation, freezing-induced deformation of ETs was measured with a newly developed quantum dot (QD)-mediated cell image deformetry system using dermal equivalents as a model tissue. The dermal equivalents were constructed by seeding QD-labeled fibroblasts in type I collagen matrices. After 24 h incubation, the ETs were directionally frozen by exposing them to a spatial temperature gradient (from 4°C to −20°C over a distance of 6 mm). While being frozen, the ETs were consecutively imaged, and consecutive pairs of these images were two-dimensionally cross-correlated to determine the local deformation during freezing. The results showed that freezing induced the deformation of ET, and its magnitude varied with both time and location. The maximum local dilatation was 0.006 s−1 and was always observed at the phase change interface. Due to this local expansion, the unfrozen region in front of the freezing interface experienced compression. This expansion-compression pattern was observed throughout the freezing process. In the unfrozen region, the deformation rate gradually decreased away from the freezing interface. After freezing/thawing, the ET experienced an approximately 28% decrease in thickness and 8% loss in weight. These results indicate that freezing-induced deformation caused the transport of interstitial fluid, and the interstitial fluid was extruded. In summary, the results suggest that complex cell-fluid-matrix interactions occur within ETs during freezing, and these interactions determine the post-thaw ECM microstructure and eventual post-thaw tissue functionality.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleSpatiotemporal Measurement of Freezing-Induced Deformation of Engineered Tissues
    typeJournal Paper
    journal volume132
    journal issue3
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4000875
    journal fristpage31003
    identifier eissn1528-8951
    keywordsDeformation
    keywordsFreezing
    keywordsBiological tissues AND Thickness
    treeJournal of Biomechanical Engineering:;2010:;volume( 132 ):;issue: 003
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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