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  • One-stop microfiber spinning and fabrication of a fibrous cell-encapsulated scaffold on a single microfluidic platform.

One-stop microfiber spinning and fabrication of a fibrous cell-encapsulated scaffold on a single microfluidic platform.

Biofabrication (2014-07-08)
D Y Park, C H Mun, E Kang, D Y No, J Ju, S H Lee
ABSTRACT

This paper provides a method for microscale fiber spinning and the in situ construction of a 3D fibrous scaffold on a single microfluidic platform. This platform was also used to fabricate a variety of fibrous scaffolds with diverse compositions without the use of complicated devices. We explored the potential utility of the fibrous scaffolds for tissue engineering applications by constructing a fibrous scaffold encapsulating primary hepatocytes. The cells in scaffold were cultured over seven days and maintained higher viability comparing with 3D alginate non-fibrous block. The main advantage of this platform is that the fibrous structure used to form a scaffold can be generated without damaging the mechanically weak alginate fibers or encapsulated cells because all procedures are performed in a single platform without the intervention of the operator. In addition, the proposed fibrous scaffold permitted high diffusion capability of molecules, which enabled better viability of encapsulated cells than non-fibrous scaffold even in massive cell culture.

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Sigma-Aldrich
Cloruro di calcio, BioUltra, Molecular Biology, ~1 M in H2O
Sigma-Aldrich
Cloruro di calcio, anhydrous, BioReagent, suitable for insect cell culture, suitable for plant cell culture, ≥96.0%
Sigma-Aldrich
Cloruro di calcio, powder, 99.99% trace metals basis
Sigma-Aldrich
Cloruro di calcio
Sigma-Aldrich
Cloruro di calcio, AnhydroBeads, −10 mesh, ≥99.9% trace metals basis
Supelco
Cloruro di calcio, 0.1 M Ca, analytical standard (for ion-selective electrodes)
Sigma-Aldrich
Cloruro di calcio, AnhydroBeads, −10 mesh, ≥99.99% trace metals basis