NiTi Shape Memory Clamps with Modified Surface for Bone Fracture Treatment

Author:

Goryczka Tomasz1ORCID,Szponder Tomasz2,Dudek Karolina13,Wierzchoń Tadeusz4,Paluch Jarosław5,Jasik Krzysztof6ORCID,Wiaderkiewicz Ryszard7

Affiliation:

1. Institute of Materials Engineering, University of Silesia in Katowice, 75 Pułku Piechoty 1A, 41-500 Chorzów, Poland

2. Department and Clinic of Animal Surgery, Veterinary Medicine Faculty, University of Life Sciences, Akademicka 13, 20-950 Lublin, Poland

3. Łukasiewcz Research Network, Institute of Ceramics and Building Materials, Cementowa 8, 31-983 Chorzów, Poland

4. Faculty of Materials Science and Engineering, Warsaw University of Technology, Wołoska 141, 02-507 Warszawa, Poland

5. Department and Clinic of Laryngology, Medical University of Silesia, Francuska 20-24, 40-027 Katowice, Poland

6. Department of Pathology, Faculty of Pharmaceutical Sciences in Sosnowiec, Medical University of Silesia, Ostrogórska 30, 41-200 Sosnowiec, Poland

7. Department of Histology and Embryology, Medical University of Silesia, Medyków 18, 40-752 Katowice, Poland

Abstract

Using NiTi alloys with shape memory for long-term medical implants requires modification of their surface due to the possible occurrence of corrosion. Hence, the surface of the staples used to join fractured bone within the craniofacial region was modified by applying a titanium oxy-nitrogen layer and a hydroxyapatite coating. Surface-modified clamps were tested in vivo using New Zealand white rabbits. After determining the mechanical characteristics of the bone and considering the initial state and surface modification, the diameter of the wire (used to make the clamps with the appropriate compression force) was selected. Implantation was performed on two groups of rabbits: experimental and control. In the experimental group, an intentionally induced bone fracture was treated in one tibia. On the second tibia, two additional clamps were applied to increase the possibility of a negative impact of the NiTi alloy on a living organism. After 6 weeks of application, a proper joining of the broken bone fragments was stated. Whereas after twelve weeks, no negative impact of the clamp material on a living organism, i.e., a rabbit, was found. Hence, the clamp with the modified surface can connect bone fragments in humans as well as small and medium-sized animals, with an extended range of use up to 12 weeks.

Publisher

MDPI AG

Subject

General Materials Science

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