skip to content
Dovepress - Open Access to Scientific and Medical Research
View our mobile site

8852

Nanostructured metal coatings on polymers increase osteoblast attachment

(2950) Views  (559) Full article downloads

Authors: Chang Yao, Dan Storey, Thomas J Webster

Published Date May 2007 Volume 2007:2(3) Pages 487 - 492
DOI: http://dx.doi.org/10.2147/IJN.S

Chang Yao1, Dan Storey2, Thomas J Webster1

1Divisions of Engineering and Orthopedics, Brown University, Providence, RI, USA; 2lonic Fusion, Longmont, Co, USA

Abstract: Bioactive coatings are in high demand to increase the functions of cells for numerous medical devices. The objective of this in vitro study was to characterize osteoblast (bone-forming cell) adhesion on several potential orthopedic polymeric materials (specifically, polyetheretherketone, ultra-high molecular weight polyethylene, and polytetrafluoroethylene) coated with either titanium or gold using a novel Ionic Plasma Deposition process which creates a surface-engineered nanostructure (with features below 100 nm). Results demonstrated that compared to currently-used titanium and uncoated polymers, polymers coated with either titanium or gold using Ionic Plasma Deposition significantly increased osteoblast adhesion. Qualitative cell morphology results supported quantitative adhesion results as increased osteoblast cell spreading was observed on coated polymers compared to uncoated polymers. In this manner, this in vitro study strongly suggests that Ionic Plasma Deposition should be further studied for creating nanometer surface features on a wide variety of materials to enhance osteoblast functions necessary for orthopedic applications.

Keywords: Nanostructured metal coatings, medical devices, osteoblast








Readers of this article also read:

Nanomedicines in the treatment of chronic hepatitis C – focus on pegylated interferon alpha-2a
High performance DNA nano-carriers of carbonate apatite: Multiple factors in regulation of particle synthesis and transfection efficiency
Bioconjugated nanoparticle detection of respiratory syncytial virus infection
Increased osteoblast cell density on nanostructured PLGA-coated nanostructured titanium for orthopedic applications
Drug delivery and nanoparticles: Applications and hazards
Bactericidal effects of silver plus titanium dioxide-coated endotracheal tubes on Pseudomonas aeruginosa and Staphylococcus aureus
Deposition of silver nanoparticles on titanium surface for antibacterial effect
Bactericidal effect of iron oxide nanoparticles on Staphylococcus aureus
Antibacterial titanium plate deposited by silver nanoparticles exhibits cell compatibility
Toxic effects of iron oxide nanoparticles on human umbilical vein endothelial cells