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Merck

Scaffold architecture controls insulinoma clustering, viability, and insulin production.

Tissue engineering. Part A (2014-01-15)
Britani N Blackstone, Andre F Palmer, Horacio R Rilo, Heather M Powell
ABSTRAKT

Recently, in vitro diagnostic tools have shifted focus toward personalized medicine by incorporating patient cells into traditional test beds. These cell-based platforms commonly utilize two-dimensional substrates that lack the ability to support three-dimensional cell structures seen in vivo. As monolayer cell cultures have previously been shown to function differently than cells in vivo, the results of such in vitro tests may not accurately reflect cell response in vivo. It is therefore of interest to determine the relationships between substrate architecture, cell structure, and cell function in 3D cell-based platforms. To investigate the effect of substrate architecture on insulinoma organization and function, insulinomas were seeded onto 2D gelatin substrates and 3D fibrous gelatin scaffolds with three distinct fiber diameters and fiber densities. Cell viability and clustering was assessed at culture days 3, 5, and 7 with baseline insulin secretion and glucose-stimulated insulin production measured at day 7. Small, closely spaced gelatin fibers promoted the formation of large, rounded insulinoma clusters, whereas monolayer organization and large fibers prevented cell clustering and reduced glucose-stimulated insulin production. Taken together, these data show that scaffold properties can be used to control the organization and function of insulin-producing cells and may be useful as a 3D test bed for diabetes drug development.

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Sigma-Aldrich
N,O-Bis(trimethylsilyl)acetamide, synthesis grade, ≥95%
Sigma-Aldrich
HEPES buffer solution, 1 M in H2O
Sigma-Aldrich
DAPI, for nucleic acid staining
Supelco
N,O-Bis(trimethylsilyl)acetamide, derivatization grade (GC derivatization), LiChropur, ≥98.5% (GC)
Supelco
Activated Charcoal Norit®, Norit® RBAA-3, rod
Sigma-Aldrich
Methane-12C, 13C-depleted, 99.99 atom % 12C
Węgiel - Szklisty, foam, 150x150mm, thickness 3.2mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, foil, 25x25mm, thickness 0.5mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 5.0mm, glassy carbon
Węgiel - Szklisty, foam, 300x300mm, thickness 30mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, tube, 50mm, outside diameter 10mm, inside diameter 3mm, wall thickness 3.5mm, glassy carbon
Węgiel - Szklisty, rod, 5mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 7.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, foam, 300x300mm, thickness 20mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, foil, 10x10mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, foil, 50x50mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, rod, 200mm, diameter 1.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 2.0mm, glassy carbon
Węgiel - Szklisty, foil, 50x50mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 6.0mm, glassy carbon
Węgiel - Szklisty, foam, 150x150mm, thickness 2.5mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, rod, 200mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, foil, 10x10mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, tube, 100mm, outside diameter 10mm, inside diameter 3mm, wall thickness 3.5mm, glassy carbon
Węgiel - Szklisty, rod, 200mm, diameter 5.0mm, glassy carbon
Węgiel - Szklisty, foam, 150x150mm, 0.05g.cmué, porosity 96.5%, 24 pores/cm
Węgiel - Szklisty, foil, 25x25mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 1.0mm, glassy carbon