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    Forced and Natural Convective Drying of Trehalose/Water Thin Films: Implication in the Desiccation Preservation of Mammalian Cells

    Source: Journal of Biomechanical Engineering:;2006:;volume( 128 ):;issue: 003::page 335
    Author:
    Bingyan Chen
    ,
    Alex Fowler
    ,
    Sankha Bhowmick
    DOI: 10.1115/1.2187051
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Trehalose is believed to offer desiccation protection to mammalian cells by forming stable glassy matrices. The goal of the current study was to explore the desiccation kinetics of thin films of trehalose-water solution under forced and natural convective conditions and to investigate the thermophysical state of mammalian cells at the bottom of the thin film. We developed a finite difference model based on the mass and energy conservation equations coupled to the water transport model from the cells. The boundary conditions were obtained from correlations or experimental measurements and the Gordon-Taylor equation was used to predict the glass transition temperature at every location. Results indicated that there are three distinct regimes for drying for both forced and natural convection, characterized by the slope of the moisture content plot as a function of time. Our results also indicate that the surface of the solution reached the glassy state in less than 10min for the Reynolds (forced) numbers explored and ∼30min for some Rayleigh (natural convective) numbers; however, significant water was trapped at this instant. Larger drying force hastened quicker glass formation but trapped more water. The numerical model was capable of predicting the drying kinetics for the dilute region accurately, but deviated while predicting the other regimes. Based on these experimental validations of the model, the osmotic response of different cells located at the bottom of the solution with orders of magnitude difference in their membrane permeability (Lp) was predicted. The results suggested that extracellular glass formed around cells at the bottom of a trehalose-water solution by the propagation of glass into the solution; however it takes more than an order of magnitude time (∼7minto>100min for forced convective drying) to remove sufficient water to form glass around cells from the time when the first surface glass is formed. This is attributed to low diffusivity of water through the glass. In addition, the water transport from the glassy matrix could be either diffusion or Lp limited. For diffusion-limited transport, lowering the film thickness at the beginning of drying by half almost lowers the drying time by an order of magnitude. In summary, the optimal design of convective desiccation protocols requires accounting for the size of the cell, their membrane permeability (Lp) and the starting thickness of the solution.
    keyword(s): Mass transfer , Drying , Glass , Equations , Water , Boundary-value problems , Temperature AND Diffusion (Physics) ,
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      Forced and Natural Convective Drying of Trehalose/Water Thin Films: Implication in the Desiccation Preservation of Mammalian Cells

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    http://yetl.yabesh.ir/yetl1/handle/yetl/133197
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    contributor authorBingyan Chen
    contributor authorAlex Fowler
    contributor authorSankha Bhowmick
    date accessioned2017-05-09T00:18:56Z
    date available2017-05-09T00:18:56Z
    date copyrightJune, 2006
    date issued2006
    identifier issn0148-0731
    identifier otherJBENDY-26597#335_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/133197
    description abstractTrehalose is believed to offer desiccation protection to mammalian cells by forming stable glassy matrices. The goal of the current study was to explore the desiccation kinetics of thin films of trehalose-water solution under forced and natural convective conditions and to investigate the thermophysical state of mammalian cells at the bottom of the thin film. We developed a finite difference model based on the mass and energy conservation equations coupled to the water transport model from the cells. The boundary conditions were obtained from correlations or experimental measurements and the Gordon-Taylor equation was used to predict the glass transition temperature at every location. Results indicated that there are three distinct regimes for drying for both forced and natural convection, characterized by the slope of the moisture content plot as a function of time. Our results also indicate that the surface of the solution reached the glassy state in less than 10min for the Reynolds (forced) numbers explored and ∼30min for some Rayleigh (natural convective) numbers; however, significant water was trapped at this instant. Larger drying force hastened quicker glass formation but trapped more water. The numerical model was capable of predicting the drying kinetics for the dilute region accurately, but deviated while predicting the other regimes. Based on these experimental validations of the model, the osmotic response of different cells located at the bottom of the solution with orders of magnitude difference in their membrane permeability (Lp) was predicted. The results suggested that extracellular glass formed around cells at the bottom of a trehalose-water solution by the propagation of glass into the solution; however it takes more than an order of magnitude time (∼7minto>100min for forced convective drying) to remove sufficient water to form glass around cells from the time when the first surface glass is formed. This is attributed to low diffusivity of water through the glass. In addition, the water transport from the glassy matrix could be either diffusion or Lp limited. For diffusion-limited transport, lowering the film thickness at the beginning of drying by half almost lowers the drying time by an order of magnitude. In summary, the optimal design of convective desiccation protocols requires accounting for the size of the cell, their membrane permeability (Lp) and the starting thickness of the solution.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleForced and Natural Convective Drying of Trehalose/Water Thin Films: Implication in the Desiccation Preservation of Mammalian Cells
    typeJournal Paper
    journal volume128
    journal issue3
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.2187051
    journal fristpage335
    journal lastpage346
    identifier eissn1528-8951
    keywordsMass transfer
    keywordsDrying
    keywordsGlass
    keywordsEquations
    keywordsWater
    keywordsBoundary-value problems
    keywordsTemperature AND Diffusion (Physics)
    treeJournal of Biomechanical Engineering:;2006:;volume( 128 ):;issue: 003
    contenttypeFulltext
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