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  4. A Bioinspired Orthopedic Biomaterial with Tunable Mechanical Properties Based on Sintered Titanium Fibers
 
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2023
Journal Article
Title

A Bioinspired Orthopedic Biomaterial with Tunable Mechanical Properties Based on Sintered Titanium Fibers

Abstract
Inadequate mechanical compliance of orthopedic implants can result in excessive strain of the bone interface, and ultimately, aseptic loosening. It is hypothesized that a fiber-based biometal with adjustable anisotropic mechanical properties can reduce interface strain, facilitate continuous remodeling, and improve implant survival under complex loads. The biometal is based on strategically layered sintered titanium fibers. Six different topologies are manufactured. Specimens are tested under compression in three orthogonal axes under 3-point bending and torsion until failure. Biocompatibility testing involves murine osteoblasts. Osseointegration is investigated by micro-computed tomography and histomorphometry after implantation in a metaphyseal trepanation model in sheep. The material demonstrates compressive yield strengths of up to 50 MPa and anisotropy correlating closely with fiber layout. Samples with 75% porosity are both stronger and stiffer than those with 85% porosity. The highest bending modulus is found in samples with parallel fiber orientation, while the highest shear modulus is found in cross-ply layouts. Cell metabolism and morphology indicate uncompromised biocompatibility. Implants demonstrate robust circumferential osseointegration in vivo after 8 weeks. The biometal introduced in this study demonstrates anisotropic mechanical properties similar to bone, and excellent osteoconductivity and feasibility as an orthopedic implant material.
Author(s)
Rüger, Matthias
Seitz, Andreas Martin
Nuss, Katja
Rechenberg, Brigitte Von
Seitz, Daniel
Kostmann, Cris  
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Quadbeck, Peter  
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Andersen, Olaf  
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Collins, Caitlyn
Journal
Advanced healthcare materials  
Open Access
DOI
10.1002/adhm.202202106
Additional link
Full text
Language
English
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Keyword(s)
  • anisotropy

  • biometals

  • osseointegration

  • precision medicine

  • titaniumfibers

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