Title of article
Osteointegration of titanium implant is sensitive to specific nanostructure morphology
Author/Authors
Divya Rani، نويسنده , , V.V. and Vinoth-Kumar، نويسنده , , Lakshmanan and Anitha، نويسنده , , V.C. and Manzoor، نويسنده , , Koyakutty and Deepthy، نويسنده , , Menon and Shantikumar، نويسنده , , V. Nair، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2012
Pages
14
From page
1976
To page
1989
Abstract
An important aspect of orthopedic implant integration is the enhancement of functional activity of osteoblasts at the tissue–implant interface without any fibrous tissue intervention. Nanostructured implant surfaces are known to enhance osteoblast activity. Previously, we have reported a simple hydrothermal method for the fabrication of non-periodic nanostructures (nanoscaffold, nanoleaves and nanoneedles) on titanium implants showing good biocompatibility and a distinct osteoblast response in vitro in terms of osteoblast adhesion to the surface. In the present work, these nanostructures have been evaluated for their detailed in vitro cellular response as well as in vivo osteointegration. Our studies showed that a specific surface nanomorphology, viz. nanoleaves, which is a network of vertically aligned, non-periodic, leaf-like structures with thickness in the nanoscale, provided a distinct increase in osteoblast cell proliferation, alkaline phosphatase (ALP) activity and collagen synthesis compared to several other types of nanomorphology, such as nanotubes, nanoscaffold and nanoneedles (rods). Gene expression analysis of ALP, osteocalcin, collagen, decorin and Runx2 showed ∼20- to 40-fold up-regulation on the leaf-like topography. Cytoskeletal arrangement studies on this substrate again revealed a unique response with favorable intracellular protein expressions of vinculin, FAK and src. In vivo osteointegration study over 12 weeks on rat model (Sprague–Dawley) showed early-stage bone formation (60% bone contact by week 2 and ∼85% by week 8, p < 0.01) in the leaf-like nanopattern, without any inflammatory cytokine production.
Keywords
hydrothermal , Titanium , Implant , Nanosurface modification , In vivo osteointegration
Journal title
Acta Biomaterialia
Serial Year
2012
Journal title
Acta Biomaterialia
Record number
1756132
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