Preparation of well-distributed titania nanopillar arrays on Ti6Al4V surface by induction heating for enhancing osteogenic differentiation of stem cells
Creators
- 1. Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, Shandong University, Ji'nan 250061 (China)
- 2. Shandong Provincial Key Laboratory of Oral Biomedicine, College of Stomatology, Shandong University, Ji'nan 250021 (China)
- 3. School of Dental Medicine, Center of Craniofacial Regeneration, Columbia University Medical Center, New York NY 10032 (United States)
- 4. Department of Stomatology, Shandong Provincial Hospital affiliated to Shandong University, Ji'nan 250021 (China)
Description
Great effort has recently been devoted to the preparation of nanoscale surfaces on titanium-based implants to achieve clinically fast osteoinduction and osseointegration, which relies on the unique characteristics of the nanostructure. In this work, we used induction heating treatment (IHT) as a rapid oxidation method to fabricate a porous nanoscale oxide layer on the Ti6Al4V surface for better medical application. Well-distributed vertical nanopillars were yielded by IHT for 20–35 s on the alloy surface. The composition of the oxides contained rutile/anatase TiO2 and a small amount of Al2O3 between the TiO2 grain boundaries (GBs). This technology resulted in a reduction and subsequent increase of surface roughness of 26–32 nm when upregulating the heating time, followed by the successive enhancement of the thickness, wettability and adhesion strength of the oxidation layer to the matrix. The surface hardness also distinctly rose to 554 HV in the IHT-35 s group compared with the 350 HV of bare Ti6Al4V. The massive small-angle GBs in the bare alloy promoted the formation of nanosized oxide crystallites. The grain refinement and deformation texture reduction further improved the mechanical properties of the matrix after IHT. Moreover, in vitro experiments on a mesenchymal stem cell (BMSC) culture derived from human bone marrow for 1–7 days indicated that the nanoscale layers did not cause cytotoxicity, and facilitated cell differentiation in osteoblasts by enhancing the gene and osteogenesis-related protein expressions after 1–3 weeks of culturing. The increase of the IHT time slightly advanced the BMSC proliferation and differentiation, especially during long-term culture. Our findings provide strong evidence that IHT oxidation technology is a novel nanosurface modification technology, which is potentially promising for further clinical development. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/1361-6528/aa9daaAdditional details
Identifiers
Publishing Information
- Journal Title
- Nanotechnology (Print)
- Journal Volume
- 29
- Journal Issue
- 4
- Journal Page Range
- [22 p.]
- ISSN
- 0957-4484
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 51057710
- Subject category
- S60: APPLIED LIFE SCIENCES; S77: NANOSCIENCE AND NANOTECHNOLOGY;
- Descriptors DEI
- ALLOYS; ALUMINIUM OXIDES; BONE MARROW; CONNECTIVE TISSUE CELLS; GRAIN BOUNDARIES; HARDNESS; NANOSTRUCTURES; OXIDATION; POROUS MATERIALS; RUTILE; STEM CELLS; TITANIUM; TITANIUM OXIDES
- Descriptors DEC
- ALUMINIUM COMPOUNDS; ANIMAL CELLS; ANIMAL TISSUES; BODY; CHALCOGENIDES; CHEMICAL REACTIONS; ELEMENTS; HEMATOPOIETIC SYSTEM; MATERIALS; MECHANICAL PROPERTIES; METALS; MICROSTRUCTURE; MINERALS; ORGANS; OXIDE MINERALS; OXIDES; OXYGEN COMPOUNDS; RADIOACTIVE MATERIALS; RADIOACTIVE MINERALS; SOMATIC CELLS; TITANIUM COMPOUNDS; TRANSITION ELEMENT COMPOUNDS; TRANSITION ELEMENTS