Publication | Closed Access
Gallium (Ga)–strontium (Sr) layered double hydroxide composite coating on titanium substrates for enhanced osteogenic and antibacterial abilities
23
Citations
48
References
2021
Year
EngineeringBiomimetic MaterialsBiomaterials DesignEscherichia ColiBiomedical EngineeringTitanium SubstratesBioactive MaterialChemical EngineeringOrthopaedic BiomaterialsMatrix BiologyLdh FilmsProtective CoatingLayered Double HydroxideMaterials ScienceAntibacterial AbilitiesMulti-functional CoatingMedicineBiomaterialsFunctional MaterialsBiocompatible Material
Abstract Bacterial infection and poor osteogenic capacity can result in the loosing or failure of titanium (Ti)‐based implants in the clinic. Therefore, it is urgent to design an effective approach to enhance the osteogenic property and restrict bacterial activity. In this study, a layered double hydroxide (LDH) composed of Ga and Sr ions on Ti substrates by a hydrothermal method, then calcined in 250°C and denoted as LDH250. The scanning electron microscopy (SEM), X‐ray diffraction (XRD), and X‐ray photoelectron spectroscopy (XPS) were confirmed that the LDH films were successfully formed on the Ti substrates. Importantly, the obtained LDH films can induce an alkaline microenvironment around the Ti surface and regulate the behaviors of osteogenic cells and bacteria. In vitro cellular experiments, the LDH250 can enhance the differentiation of both MC3T3‐E1 cells and osteoblasts, stimulate alkaline phosphatase activity (ALP), collagen secretion, and mineralization levels. Meanwhile, antimicrobial assay against Escherichia coli ( E. coli ) and Staphylococcus aureus ( S. aureus ) demonstrated that the LDH250 samples had strong antibacterial abilities, which attributed to the release profile of Ga 3+ could act as a “Trojan horse” to destroy the bacterial iron metabolism, inducing of local alkaline environment, and producing reactive oxygen species. Hence, this study provides an effective method for reducing antibacterial infection and enhancing the bone integrative capacity of Ti‐based implants for orthopedic applications.
| Year | Citations | |
|---|---|---|
Page 1
Page 1