DocumentCode
1383983
Title
Magnetoelastic Materials as Novel Bioactive Coatings for the Control of Cell Adhesion
Author
Vlaisavljevich, Eli ; Janka, Logan P. ; Ong, Keat G. ; Rajachar, Rupak M.
Author_Institution
Dept. of Biomed. Eng., Michigan Technol. Univ., Houghton, MI, USA
Volume
58
Issue
3
fYear
2011
fDate
3/1/2011 12:00:00 AM
Firstpage
698
Lastpage
704
Abstract
Interfacial fibrosis is known to dramatically decrease the lifespan, stability, and function of biomedical implants and bone-anchored prosthetics. Bioactive coatings aimed at mitigating fibrous adhesions are one of the approaches to alleviate the problem. In this paper, we are developing a bioactive coating based upon a magnetoelastic (ME) material that vibrates in response to an ac magnetic field. In order to establish these coatings for this purpose, the ME material was first rendered bioactive through the sequential addition of polyurethane and chitosan thin films. Indirect live/dead assays were performed showing increased cell viability for polyurethane and chitosan-coated sensors compared to the uncoated controls. Direct adhesion experiments were performed to test the response of fibroblasts cultured on static and vibrated ME materials. Results showed cells adherent to static but not vibrated coatings. Detached cells showed no viability loss compared to controls. The finding that submicrometer ME vibrations can prevent cell adhesion in vitro without inducing cell death suggests the potential of these coatings to effectively control interfacial fibrosis. Future work will address the effect of vibrations on cell morphology and local gene expression in vitro, as well as fibrous tissue formation in vivo.
Keywords
adhesion; biological tissues; biomechanics; biomedical materials; bone; cellular biophysics; coatings; genetics; polymer films; prosthetics; bioactive coatings; biomedical implants; bone-anchored prosthetics; cell adhesion; cell morphology; cell viability; chitosan thin films; fibrous adhesions; fibrous tissue formation; interfacial fibrosis; local gene expression; magnetoelastic materials; polyurethane; Adhesives; Coatings; Fibroblasts; Media; Surface treatment; Vibrations; Bone-anchored prosthetics; cell adhesion; fibrosis; magnetoelastic (ME) vibrations; Animals; Cell Adhesion; Cell Line, Transformed; Cell Survival; Chitosan; Electromagnetic Fields; Fibroblasts; Materials Testing; Mice; Polyurethanes; Suture Anchors;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2010.2093131
Filename
5640658
Link To Document