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  • Reduced graphene oxide-coated hydroxyapatite composites stimulate spontaneous osteogenic differentiation of human mesenchymal stem cells.

Reduced graphene oxide-coated hydroxyapatite composites stimulate spontaneous osteogenic differentiation of human mesenchymal stem cells.

Nanoscale (2015-06-23)
Jong Ho Lee, Yong Cheol Shin, Oh Seong Jin, Seok Hee Kang, Yu-Shik Hwang, Jong-Chul Park, Suck Won Hong, Dong-Wook Han
ZUSAMMENFASSUNG

Human mesenchymal stem cells (hMSCs) have great potential as cell sources for bone tissue engineering and regeneration, but the control and induction of their specific differentiation into bone cells remain challenging. Graphene-based nanomaterials are considered attractive candidates for biomedical applications such as scaffolds in tissue engineering, substrates for SC differentiation and components of implantable devices, due to their biocompatible and bioactive properties. Despite the potential biomedical applications of graphene and its derivatives, only limited information is available regarding their osteogenic activity. This study concentrates upon the effects of reduced graphene oxide (rGO)-coated hydroxyapatite (HAp) composites on osteogenic differentiation of hMSCs. The average particle sizes of HAp and rGO were 1270 ± 476 nm and 438 ± 180 nm, respectively. When coated on HAp particulates, rGO synergistically enhanced spontaneous osteogenic differentiation of hMSCs, without hampering their proliferation. This result was confirmed by determining alkaline phosphatase activity and mineralization of calcium and phosphate as early and late stage markers of osteogenic differentiation. It is suggested that rGO-coated HAp composites can be effectively utilized as dental and orthopedic bone fillers since these graphene-based particulate materials have potent effects on stimulating the spontaneous differentiation of MSCs and show superior bioactivity and osteoinductive potential.

MATERIALIEN
Produktnummer
Marke
Produktbeschreibung

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Triton X-100, laboratory grade
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Formaldehyd -Lösung, Molecular Biology, 36.5-38% in H2O
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Formaldehyd -Lösung, ACS reagent, 37 wt. % in H2O, contains 10-15% Methanol as stabilizer (to prevent polymerization)
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L-Glutamin, meets USP testing specifications, suitable for cell culture, 99.0-101.0%, from non-animal source
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Propidiumjodid, ≥94.0% (HPLC)
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L-Glutamin, ReagentPlus®, ≥99% (HPLC)
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L-Glutamin
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Formaldehyd -Lösung, Molecular Biology, BioReagent, ≥36.0% in H2O (T)
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Hydroxylapatit, nanopowder, <200 nm particle size (BET), ≥97%, synthetic
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Natriumcarbonat, anhydrous, powder, 99.999% trace metals basis
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Propidiumjodid -Lösung
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Natriumcarbonat, BioXtra, ≥99.0%
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Hydroxyapatit, powder, synthetic
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Formaldehyd -Lösung, meets analytical specification of USP, ≥34.5 wt. %
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L-Glutamin, BioUltra, ≥99.5% (NT)
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Calciumphosphat tribasisch, 34.0-40.0% Ca basis
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L-Glutamin, γ-irradiated, BioXtra, suitable for cell culture
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Natriumcarbonat, BioUltra, anhydrous, ≥99.5% (calc. on dry substance, T)
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Hydroxyapatit, synthetic, 99.8% trace metals basis (excludes Mg)
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Hydroxylapatit, puriss., meets analytical specification of Ph. Eur., BP, FCC, E341, ≥90% (calculated on glowed substance)
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Hydroxylapatit, nanoparticles, dispersion, 10 wt. % in H2O, <200 nm particle size (BET)
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Hydroxylapatit, purum p.a., ≥90% (as Ca3(PO4)2, KT)
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