Enhanced osteogenic differentiation of human mesenchymal stem cells on Ti surfaces with electrochemical nanopattern formation

Mater Sci Eng C Mater Biol Appl. 2019 Jun:99:1174-1181. doi: 10.1016/j.msec.2019.02.039. Epub 2019 Feb 13.

Abstract

Titanium (Ti) and its alloys are mainly used for dental and orthopedic applications due to their excellent biocompatibility and mechanical properties. However, their intrinsic bioinertness often quotes as a common complaint for biomedical applications. Herein, we produced nanopattern Ti surfaces with 10 nm nanopores in 120 nm dimples by electrochemical nanopattern formation (ENF), and evaluated the osteogenic differentiation of human mesenchymal stem cells (hMSCs) on the nanopattern Ti surfaces. The ENF surfaces were obtained by removing the TiO2 nanotube (NT) layers prepared by an anodization process. To determine the in vitro effects of the ENF surface, cell proliferation assay, alkaline phosphatase activity assay, alizarin red staining, western blotting, and immunocytochemistry were performed. Atomic force microscopy and scanning electron microscopy analysis show that the ENF surface has an ultrafine surface roughness with highly aligned nanoporous morphology. hMSCs on ENF surfaces exhibit increased proliferation and enhanced osteogenic differentiation as compared to the ordered TiO2 nanotubular and compact TiO2 surfaces. Surface modification with the ENF process is a promising technique for fabricating osteointegrative implant materials with a highly bioactive, rigid and purified nano surfaces.

Keywords: Electrochemical nanopattern formation; Nanotube; Osteogenic differentiation; Surface treatment; Titanium.

MeSH terms

  • Alkaline Phosphatase / metabolism
  • Cell Differentiation* / drug effects
  • Cell Proliferation
  • Electrochemistry*
  • Humans
  • Mesenchymal Stem Cells / cytology*
  • Mesenchymal Stem Cells / drug effects
  • Mesenchymal Stem Cells / metabolism
  • Nanotechnology*
  • Nanotubes / chemistry
  • Nanotubes / ultrastructure
  • Osteocalcin / metabolism
  • Osteogenesis* / drug effects
  • Surface Properties
  • Titanium / pharmacology*

Substances

  • Osteocalcin
  • Titanium
  • Alkaline Phosphatase