Literature DB >> 20838481

Impact of a compound droplet on a flat surface: A model for single cell epitaxy.

Savas Tasoglu, Gozde Kaynak, Andrew J Szeri, Utkan Demirci, Metin Muradoglu.   

Abstract

The impact and spreading of a compound viscous droplet on a flat surface are studied computationally using a front-tracking method as a model for the single cell epitaxy. This is a technology developed to create two-dimensional and three-dimensional tissue constructs cell by cell by printing cell-encapsulating droplets precisely on a substrate using an existing ink-jet printing method. The success of cell printing mainly depends on the cell viability during the printing process, which requires a deeper understanding of the impact dynamics of encapsulated cells onto a solid surface. The present study is a first step in developing a model for deposition of cell-encapsulating droplets. The inner droplet representing the cell, the encapsulating droplet, and the ambient fluid are all assumed to be Newtonian. Simulations are performed for a range of dimensionless parameters to probe the deformation and rate of deformation of the encapsulated cell, which are both hypothesized to be related to cell damage. The deformation of the inner droplet consistently increases: as the Reynolds number increases; as the diameter ratio of the encapsulating droplet to the cell decreases; as the ratio of surface tensions of the air-solution interface to the solution-cell interface increases; as the viscosity ratio of the cell to encapsulating droplet decreases; or as the equilibrium contact angle decreases. It is observed that maximum deformation for a range of Weber numbers has (at least) one local minimum at We=2. Thereafter, the effects of cell deformation on viability are estimated by employing a correlation based on the experimental data of compression of cells between parallel plates. These results provide insight into achieving optimal parameter ranges for maximal cell viability during cell printing.

Year:  2010        PMID: 20838481      PMCID: PMC2937050          DOI: 10.1063/1.3475527

Source DB:  PubMed          Journal:  Phys Fluids (1994)        ISSN: 1070-6631            Impact factor:   3.521


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  15 in total

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Review 6.  Miniaturized lensless imaging systems for cell and microorganism visualization in point-of-care testing.

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Review 7.  Multiscale assembly for tissue engineering and regenerative medicine.

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Review 8.  Bioprinting for stem cell research.

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Review 9.  Manipulating biological agents and cells in micro-scale volumes for applications in medicine.

Authors:  Savas Tasoglu; Umut Atakan Gurkan; Shuqi Wang; Utkan Demirci
Journal:  Chem Soc Rev       Date:  2013-07-07       Impact factor: 54.564

Review 10.  Emerging technologies for assembly of microscale hydrogels.

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Journal:  Adv Healthc Mater       Date:  2012-03       Impact factor: 9.933

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