Title of article :
Electrospun poly(ε-caprolactone)/Ca-deficient hydroxyapatite nanohybrids: Microstructure, mechanical properties and cell response by murine embryonic stem cells
Author/Authors :
Bianco، نويسنده , , Alessandra and Di Federico، نويسنده , , Erica and Moscatelli، نويسنده , , Ilana and Camaioni، نويسنده , , Antonella and Armentano، نويسنده , , Ilaria and Campagnolo، نويسنده , , Luisa and Dottori، نويسنده , , Mariaserena and Kenny، نويسنده , , Josè Maria and Siracusa، نويسنده , , Gregorio and Gusmano، نويسنده , , Gualtiero، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2009
Abstract :
Nanohybrid scaffolds mimicking extracellular matrix are promising experimental models to study stem cell behaviour, in terms of adhesion and proliferation. In the present study, the structural characterization of a novel electrospun nanohybrid and the analysis of cell response by a highly sensitive cell type, embryonic stem (ES) cells, are investigated. Ca-deficient hydroxyapatite nanocrystals (d-HAp) were synthesized by precipitation. Fibrous PCL/d-HAp nanohybrids were obtained by electrospinning, d-HAp content ranging between 2 and 55 wt.%. Electrospun mats showed a non-woven architecture, average fiber size was 1.5 ±0.5 μm, porosity 80–90%, and specific surface area 16 m2 g− 1. Up to 6.4 wt.% d-HAp content, the nanohybrids displayed comparable microstructural, mechanical and dynamo-mechanical properties. Murine ES cell response to neat PCL and to nanohybrid PCL/d-HAp (6.4 wt.%) mats was evaluated by analyzing morphological, metabolic and functional markers. Cells growing on either scaffold proliferated and maintained pluripotency markers at essentially the same rate as cells growing on standard tissue culture plates with no detectable signs of cytotoxicity, despite a lower cell adhesion at the beginning of culture. These results indicate that electrospun PCL scaffolds may provide adequate supports for murine ES cell proliferation in a pluripotent state, and that the presence of d-HAp within the mat does not interfere with their growth.
Keywords :
Electrospun fibers , Murine embryonic stem cells , Biocompatibility , Poly(?-caprolactone) , Nanohydroxyapatite
Journal title :
Materials Science and Engineering C
Journal title :
Materials Science and Engineering C