AI Article Synopsis

  • 3D hydrogel scaffolds made of poly(2-hydroxyethyl-methacrylate) (pHEMA) are created using direct ink writing for applications in cellular microcultures and tissue engineering.
  • These scaffolds are treated with poly-l-lysine (PLL) to enhance their biocompatibility for use in cultures of NIH/3T3 fibroblast and MC3T3-E1 preosteoblast cells.
  • Investigation methods include spatial light interference microscopy (SLIM) for live cell imaging, atomic force microscopy (AFM) for scaffold mechanics, and confocal fluorescence microscopy (CFM) for examining how different ratios of prepolymers affect hydrogel properties and cell compatibility.

Article Abstract

3D hydrogel scaffolds are widely used in cellular microcultures and tissue engineering. Using direct ink writing, microperiodic poly(2-hydroxyethyl-methacrylate) (pHEMA) scaffolds are created that are then printed, cured, and modified by absorbing 30 kDa protein poly-l-lysine (PLL) to render them biocompliant in model NIH/3T3 fibroblast and MC3T3-E1 preosteoblast cell cultures. Spatial light interference microscopy (SLIM) live cell imaging studies are carried out to quantify cellular motilities for each cell type, substrate, and surface treatment of interest. 3D scaffold mechanics is investigated using atomic force microscopy (AFM), while their absorption kinetics are determined by confocal fluorescence microscopy (CFM) for a series of hydrated hydrogel films prepared from prepolymers with different homopolymer-to-monomer (Mr ) ratios. The observations reveal that the inks with higher Mr values yield relatively more open-mesh gels due to a lower degree of entanglement. The biocompatibility of printed hydrogel scaffolds can be controlled by both PLL content and hydrogel mesh properties.

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Source
http://dx.doi.org/10.1002/adhm.201500888DOI Listing

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