Antibacterial Copper-Doped Calcium Phosphate Glasses for Bone Tissue Regeneration.
Farzad ForoutanJamie McGuirePriyanka GuptaAthanasios NikolaouBenjamin A KyffinNicole L KellyJohn V HannaJorge Gutierrez-MerinoJonathan Campbell KnowlesSong-Yi BaekEirini VelliouDaniela CartaPublished in: ACS biomaterials science & engineering (2019)
Calcium phosphate glasses are a promising new generation of biomaterials that can simultaneously induce tissue regeneration and controlled release of therapeutic molecules. In this work, novel calcium phosphate glasses containing 0, 2, 4, and 6 mol % Cu2+ were synthesized via room temperature precipitation reaction in aqueous solution. The effect of Cu2+ addition on the glass properties and structure was investigated using thermal analysis, 31P solid-state MAS NMR, Raman spectroscopy, and X-ray diffraction. All glasses crystallize at temperature >500 °C and are mainly formed by Q1 groups. The release of P, Ca, and Cu in solution over time was monitored via inductively coupled plasma-optical emission spectroscopy. It was found that with increasing Cu content, the amount of P and Ca released decreases whereas the amount of Cu released increases. The effect of Cu2+ release on the antibacterial activity against S. aureus, a bacterial strain commonly found in postsurgery infections, has been investigated. The addition of copper has been shown to infer the glasses antibacterial properties. As expected, the antibacterial activity of the glasses increases with increasing Cu2+ content. Cytocompatibility was assessed by seeding human osteoblast-like osteosarcoma cells Saos-2 (HTB85) on the glass particles. A significant increase in cell number was observed in all the glasses investigated. The copper-doped calcium phosphate glasses have proven to be multifunctional, as they combine bone regenerative properties with antibacterial activity. Therefore, they have great potential as antibacterial bioresorbable materials for hard tissue regeneration.
Keyphrases
- aqueous solution
- solid state
- metal organic framework
- stem cells
- silver nanoparticles
- high resolution
- room temperature
- raman spectroscopy
- wound healing
- quantum dots
- bone regeneration
- cell therapy
- induced apoptosis
- endothelial cells
- magnetic resonance
- magnetic resonance imaging
- bone marrow
- single cell
- oxidative stress
- endoplasmic reticulum stress
- oxide nanoparticles
- risk assessment
- ms ms
- cell proliferation
- essential oil
- human health
- cell cycle arrest
- high performance liquid chromatography
- dual energy
- pluripotent stem cells