Low elastic modulus titanium-nickel scaffolds for bone implants

Mater Sci Eng C Mater Biol Appl. 2014 Jan 1:34:110-4. doi: 10.1016/j.msec.2013.08.043. Epub 2013 Sep 7.

Abstract

The superelastic nature of repeating the human bones is crucial to the ideal artificial biomedical implants to ensure smooth load transfer and foster the ingrowth of new bone tissues. Three dimensional interconnected porous TiNi scaffolds, which have the tailorable porous structures with micro-hole, were fabricated by slurry immersing with polymer sponge and sintering method. The crystallinity and phase composition of scaffolds were studied by X-ray diffraction. The pore morphology, size and distribution in the scaffolds were characterized by scanning electron microscopy. The porosity ranged from 65 to 72%, pore size was 250-500μm. Compressive strength and elastic modulus of the scaffolds were ~73MPa and ~3GPa respectively. The above pore structural and mechanical properties are similar to those of cancellous bone. In the initial cell culture test, osteoblasts adhered well to the scaffold surface during a short time, and then grew smoothly into the interconnected pore channels. These results indicate that the porous TiNi scaffolds fabricated by this method could be bone substitute materials.

Keywords: Biological evaluation in vitro; Cancellous bone substitute; Compressing properties; Pore structural properties; Porous TiNi alloy; Slurry immersing with polymer sponge and sintering method.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Bone and Bones / drug effects*
  • Cell Shape / drug effects
  • Compressive Strength / drug effects
  • Elastic Modulus / drug effects*
  • Humans
  • Microscopy, Electron, Scanning
  • Nickel / pharmacology*
  • Osteoblasts / cytology
  • Osteoblasts / drug effects
  • Osteoblasts / ultrastructure
  • Particle Size
  • Porosity
  • Prostheses and Implants*
  • Stress, Mechanical
  • Tissue Scaffolds / chemistry*
  • Titanium / pharmacology*
  • X-Ray Diffraction

Substances

  • titanium nickelide
  • Nickel
  • Titanium