Article ID Journal Published Year Pages File Type
1656318 Surface and Coatings Technology 2016 7 Pages PDF
Abstract

•Gelatin (Gel)–bioglass (BaG)/polycaprolactone (PCL)–BaG was coated on Mg scaffold.•Mg scaffold coated by PCL–BaG/Gel–BaG layers exhibited enhanced mechanical integrity.•Mg scaffold/PCL–BaG/Gel–BaG presented good capability in cell attachment.

Magnesium (Mg), as a biodegradable metal, has recently been considered to be used in hard tissue engineering scaffold design. However, the fast release of hydrogen gas during exposure of Mg to corroding biofluids significantly limits the cytocompatibility of the scaffolds. To overcome this key drawback, in this study, the surfaces of Mg scaffolds are modified by polymer/hydrogel/ceramic layers consisting of polycaprolactone (PCL), gelatin (Gel) and bioactive glass (BaG). A detailed study has been performed on the in vitro mechanical properties of the Mg scaffold coated by PCL–BaG/Gel–BaG compared with the uncoated one. Our results show that the coated scaffold can keep its mechanical integrity three times longer than the uncoated one. To assess cytocompatibility, human osteoblast Saos-2 cells were cultured on the surface of the scaffolds. Cell attachment and growth were evaluated by scanning electron microscopy and cell viability assays, respectively. While no cell could attach on the uncoated scaffold, cell viability and growth are acceptable on the Mg scaffold/PCL–BaG/Gel–BaG.

Related Topics
Physical Sciences and Engineering Materials Science Nanotechnology
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