Deterministic encapsulation of single cells in thin tunable microgels for niche modelling and therapeutic delivery
Single cells encapsulated in a layer of alginate and injected intravenously delay clearance kinetics and sustain donor-derived soluble factors in vivo . Existing techniques to encapsulate cells into microscale hydrogels generally yield high polymer-to-cell ratios and lack control over the hydrogel’s...
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Veröffentlicht in: | Nature materials 2017-02, Vol.16 (2), p.236-243 |
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Sprache: | eng |
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Zusammenfassung: | Single cells encapsulated in a layer of alginate and injected intravenously delay clearance kinetics and sustain donor-derived soluble factors
in vivo
.
Existing techniques to encapsulate cells into microscale hydrogels generally yield high polymer-to-cell ratios and lack control over the hydrogel’s mechanical properties
1
. Here, we report a microfluidic-based method for encapsulating single cells in an approximately six-micrometre layer of alginate that increases the proportion of cell-containing microgels by a factor of ten, with encapsulation efficiencies over 90%. We show that
in vitro
cell viability was maintained over a three-day period, that the microgels are mechanically tractable, and that, for microscale cell assemblages of encapsulated marrow stromal cells cultured in microwells, osteogenic differentiation of encapsulated cells depends on gel stiffness and cell density. We also show that intravenous injection of singly encapsulated marrow stromal cells into mice delays clearance kinetics and sustains donor-derived soluble factors
in vivo
. The encapsulation of single cells in tunable hydrogels should find use in a variety of tissue engineering and regenerative medicine applications. |
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ISSN: | 1476-1122 1476-4660 |
DOI: | 10.1038/nmat4781 |