3 research outputs found

    Microstructure and biomechanical characteristics of bone substitutes for trauma and orthopaedic surgery

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    Abstract. BACKGROUND: Many (artificial) bone substitute materials are currently available for use in orthopaedic trauma surgery. Objective data on their biological and biomechanical characteristics, which determine their clinical application, is mostly lacking. The aim of this study was to investigate structural and in vitro mechanical properties of nine bone substitute cements registered for use in orthopaedic trauma surgery in the Netherlands. METHODS: Seven calcium phosphate cements (BoneSourceĀ®, CalcibonĀ®, ChronOSĀ®, EuroboneĀ®, HydroSetā„¢, Norian SRSĀ®, and OstimĀ®), one calcium sulphate cement (MIIGĀ® X3), and one bioactive glass cement (CortossĀ®) were tested. Structural characteristics were measured by micro-CT scanning. Compression strength and stiffness were determined following unconfined compression tests. RESULTS: Each bone substitute had unique characteristics. Mean total porosity ranged from 53% (OstimĀ®) to 0.5% (Norian SRSĀ®). Mean pore size exceeded 100 Ī¼m only in EuroboneĀ® and CortossĀ® (162.2 Ā± 107.1 Ī¼m and 148.4 Ā± 70.6 Ī¼m, respectively). However, 230 Ī¼m pores were found in CalcibonĀ®, Norian SRSĀ®, HydroSetā„¢, and MIIGĀ® X3. Connectivity density ranged from 27/cm3 for HydroSetā„¢ to 0.03/cm3 for CalcibonĀ®. The ultimate compression strength was highest in CortossĀ® (47.32 MPa) and lowest in OstimĀ® (0.24 MPa). Young's Modulus was highest in CalcibonĀ® (790 MPa) and lowest in OstimĀ® (6 MPa). CONCLUSIONS: The bone substitutes tested display a wide range in structural properties and compression strength, indicating that they will be suitable for different clinical indications. The data outlined here will help surgeons to select the most suitable products currently available for specific clinical indications
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