[HTML][HTML] Cell studies of hybridized carbon nanofibers containing bioactive glass nanoparticles using bone mesenchymal stromal cells

XR Zhang, XQ Hu, XL Jia, LK Yang, QY Meng… - Scientific Reports, 2016 - nature.com
XR Zhang, XQ Hu, XL Jia, LK Yang, QY Meng, YY Shi, ZZ Zhang, Q Cai, YF Ao, XP Yang
Scientific Reports, 2016nature.com
Bone regeneration required suitable scaffolding materials to support the proliferation and
osteogenic differentiation of bone-related cells. In this study, a kind of hybridized
nanofibrous scaffold material (CNF/BG) was prepared by incorporating bioactive glass (BG)
nanoparticles into carbon nanofibers (CNF) via the combination of BG sol-gel and
polyacrylonitrile (PAN) electrospinning, followed by carbonization. Three types (49 s, 68 s
and 86 s) of BG nanoparticles were incorporated. To understand the mechanism of CNF/BG …
Abstract
Bone regeneration required suitable scaffolding materials to support the proliferation and osteogenic differentiation of bone-related cells. In this study, a kind of hybridized nanofibrous scaffold material (CNF/BG) was prepared by incorporating bioactive glass (BG) nanoparticles into carbon nanofibers (CNF) via the combination of BG sol-gel and polyacrylonitrile (PAN) electrospinning, followed by carbonization. Three types (49 s, 68 s and 86 s) of BG nanoparticles were incorporated. To understand the mechanism of CNF/BG hybrids exerting osteogenic effects, bone marrow mesenchymal stromal cells (BMSCs) were cultured directly on these hybrids (contact culture) or cultured in transwell chambers in the presence of these materials (non-contact culture). The contributions of ion release and contact effect on cell proliferation and osteogenic differentiation were able to be correlated. It was found that the ionic dissolution products had limited effect on cell proliferation, while they were able to enhance osteogenic differentiation of BMSCs in comparison with pure CNF. Differently, the proliferation and osteogenic differentiation were both significantly promoted in the contact culture. In both cases, CNF/BG(68 s) showed the strongest ability in influencing cell behaviors due to its fastest release rate of soluble silicium-relating ions. The synergistic effect of CNF and BG would make CNF/BG hybrids promising substrates for bone repairing.
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