| Literature DB >> 29454274 |
Long Bai1, Zhibin Du2, Jingjing Du3, Wei Yao4, Jiaming Zhang5, Zeming Weng5, Si Liu5, Ya Zhao5, Yanlian Liu5, Xiangyu Zhang5, Xiaobo Huang5, Xiaohong Yao5, Ross Crawford2, Ruiqiang Hang6, Di Huang7, Bin Tang5, Yin Xiao8.
Abstract
A multifaceted coating for hard tissue implants, with favorable osteogenesis, angiogenesis, and osteoimmunomodulation abilities, would be of great value since it could improve osseointegration and alleviate prosthesis loosening. However, to date there are few coatings that fully satisfy these criteria. Herein we describe a microporous TiO2 coating decorated with hydroxyapatite (HA) nanoparticles that is generated by micro-arc oxidation of pure titanium (Ti) and followed annealing. By altering the annealing temperature, it is possible to simultaneously tune the coating's physical (morphology and wettability) and chemical (composites and crystallinity) properties. A coating produced with micro-arc oxidization (MAO) with an annealing temperature of 650 °C (MAO-650) exhibits numerous favorable physicochemical properties, such as hybrid micro-nano morphology, superhydrophilicity, and highly crystalline HA nanoparticles. In vitro experiments reveal that the MAO-650 coating not only supports proliferation and differentiation of both osteoblasts and endothelial cells, but also inhibits the inflammatory response of macrophages and enables a favorable osteoimmunomodulation to facilitate osteo/angio-genesis. In vivo evaluation mirrors these results, and shows that the MAO-650 coating results in ameliorative osseointegration when compared with the pristine MAO coating. These data highlight the profound effect of surface physicochemical properties on the regulation of osteo/angio-genesis and osteoimmunomodulation in the enhancement of osseointegration. CrownEntities:
Keywords: Angiogenesis; Osseointegration; Osteogenesis; Osteoimmunomodulation; Titanium surface modification
Mesh:
Substances:
Year: 2018 PMID: 29454274 DOI: 10.1016/j.biomaterials.2018.02.010
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479