Selective cell affinity of biomimetic micro-nano-hybrid structured TiO2 overcomes the biological dilemma of osteoblasts

Dent Mater. 2010 Apr;26(4):275-87. doi: 10.1016/j.dental.2009.11.077. Epub 2009 Dec 16.

Abstract

Objective: There is a great demand for dental implant surfaces to accelerate the process of peri-implant bone generation to reduce its healing time and enable early loading. To this end, an inverse correlation between the proliferation and functional maturation (differentiation) in osteoblasts presents a challenge for the rapid generation of greater amounts of bone. For instance, osteoblasts exhibit faster differentiation but slower proliferation on micro-roughened titanium surfaces. Using a unique micro-nano-hierarchical topography of TiO(2) that mimics biomineralized matrices, this study demonstrates that this challenge can be overcome without the use of biological agents.

Methods: Titanium disks of grade 2 commercially pure titanium were prepared by machining (smooth surface). To create a microtexture with peaks and valleys (micropit surface), titanium disks were acid-etched. To create 200-nm TiO(2) nanonodules within the micropits (nanonodule-in-micropit surface), TiO(2) was sputter-deposited onto the acid-etched surface. Rat bone marrow-derived osteoblasts and NIH3T3 fibroblasts were cultured on machined smooth, micropit, and nanonodule-in-micropit surfaces.

Results: Despite the substantially increased surface roughness, the addition of 200-nm nanonodules to micropits increased osteoblast proliferation while enhancing their functional differentiation. In contrast, this nanonodule-in-micropit surface decreased proliferation and function in fibroblasts.

Significance: The data suggest the establishment of cell-selectively functionalized nano-in-micro smart titanium surfaces that involve a regulatory effect on osteoblast proliferation, abrogating the inhibitory mechanism on the micropitted surface, while enhancing their functional differentiation. Biomimetic and controllable nature of this nanonodules-in-micropits surface may offer a novel micro-to-nanoscale hierarchical platform to biologically optimize nanofeatures of biomaterials. Particularly, this micro-nano-hybrid surface may be an effective approach to improve current dental implant surfaces for accelerated bone integration.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • 3T3 Cells
  • Acid Etching, Dental
  • Animals
  • Biomimetic Materials / chemistry*
  • Cell Adhesion*
  • Cell Differentiation
  • Cell Proliferation
  • Cells, Cultured
  • Collagen / biosynthesis
  • Fibroblasts / cytology
  • Mice
  • Nanostructures
  • Osteoblasts / cytology*
  • Osteoblasts / metabolism
  • Osteoblasts / physiology*
  • Osteocalcin / biosynthesis
  • Osteopontin / biosynthesis
  • Rats
  • Rats, Sprague-Dawley
  • Surface Properties
  • Titanium / chemistry*

Substances

  • Osteocalcin
  • Osteopontin
  • titanium dioxide
  • Collagen
  • Titanium