Assessment of Cellular Reactions to Magnesium as Implant Material in Comparison to Titanium and to Glyconate Using the Mouse Tail Model

Author:

Reifenrath Janin1,Badar Muhammad2,Dziuba Dina1,Müller Peter P.2,Heidenblut Torsten3,Bondarenko Alexander4,Meyer-Lindenberg Andrea5

Affiliation:

1. Small Animal Clinic, University of Veterinary Medicine Hannover, Hannover - Germany

2. Helmholtz Centre for Infection Research, Braunschweig - Germany

3. Institute of Materials Science, Leibniz University Hannover, Garbsen - Germany

4. Department of Pathology, Dnipropetrovs'k State Medical Academy, Dnipropetrovs'k - Ukraine

5. Clinic for Small Animal Surgery and Reproduction, Centre of Clinical Veterinary Medicine, Ludwig Maximilian University München, München - Germany

Abstract

Purpose Nowadays, research in magnesium alloys as a biodegradable implant material has increased. The aim of this study was to examine osteoinductive properties and tissue responses to pure magnesium in comparison to conventional permanent (titanium) and to degradable (glyconate) implant materials. Methods Magnesium wires (0.4 mm in diameter, 10 mm length) were implanted into tail veins of mice and examined after 2, 4, 8, 16 and 32 weeks. Titanium and glyconate as controls were assessed after 2, 4, 8 and 24 weeks. μ-computed tompgraphy, histology and SEM examinations were performed. Results Magnesium implants showed increasing structural losses over time with fragmentation after an observation period of 32 weeks. Glyconate was fully degraded and titanium remained almost unaffected after 24 weeks. In contrast to some titanium and glyconate implants, first calcium and phosphate precipitations could be observed around magnesium implants after two weeks. However, ossification could not be observed even after 32 weeks, whereas enchondral ossification was found partially in the sourrounding of glyconate and titanium implants after eight weeks. Nevertheless, magnesium implants showed less inflammatory responses and fibrosing properties than the conventional implant materials. Conclusions Although the assumed osteoinductive properties could not be detected, magnesium appears to be a promising degradable implant material because of the low sensitizing and inflammatory potential.

Publisher

SAGE Publications

Subject

Biomedical Engineering,Biomaterials,General Medicine,Bioengineering,Biophysics

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