Mechanical properties and biocompatibility of porous titanium scaffolds for bone tissue engineering

J Mech Behav Biomed Mater. 2017 Nov:75:169-174. doi: 10.1016/j.jmbbm.2017.07.015. Epub 2017 Jul 13.

Abstract

Synthetic scaffolds are a highly promising new approach to replace both autografts and allografts to repair and remodel damaged bone tissue. Biocompatible porous titanium scaffold was manufactured through a powder metallurgy approach. Magnesium powder was used as space holder material which was compacted with titanium powder and removed during sintering. Evaluation of the porosity and mechanical properties showed a high level of compatibility with human cortical bone. Interconnectivity between pores is higher than 95% for porosity as low as 30%. The elastic moduli are 44.2GPa, 24.7GPa and 15.4GPa for 30%, 40% and 50% porosity samples which match well to that of natural bone (4-30GPa). The yield strengths for 30% and 40% porosity samples of 221.7MPa and 117MPa are superior to that of human cortical bone (130-180MPa). In-vitro cell culture tests on the scaffold samples using Human Mesenchymal Stem Cells (hMSCs) demonstrated their biocompatibility and indicated osseointegration potential. The scaffolds allowed cells to adhere and spread both on the surface and inside the pore structures. With increasing levels of porosity/interconnectivity, improved cell proliferation is obtained within the pores. It is concluded that samples with 30% porosity exhibit the best biocompatibility. The results suggest that porous titanium scaffolds generated using this manufacturing route have excellent potential for hard tissue engineering applications.

Keywords: Biocompatibility; Powder metallurgy; Scaffold; Space holder; Titanium.

MeSH terms

  • Biocompatible Materials / analysis*
  • Bone and Bones*
  • Cells, Cultured
  • Elastic Modulus
  • Humans
  • Mesenchymal Stem Cells
  • Porosity
  • Tissue Engineering*
  • Tissue Scaffolds*
  • Titanium*

Substances

  • Biocompatible Materials
  • Titanium