Investigating the Influence of Architecture and Material Composition of 3D Printed Anatomical Design Scaffolds for Large Bone Defects
Author(s) -
Evangelos Daskalakis,
Fengyuan Liu,
Boyang Huang,
Anil A. Acar,
Glen Cooper,
Andrew Weightman,
Gordon Blunn,
Bahattin Koç,
Paulo Bártolo
Publication year - 2021
Publication title -
international journal of bioprinting
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.014
H-Index - 24
eISSN - 2424-7723
pISSN - 2424-8002
DOI - 10.18063/ijb.v7i2.268
Subject(s) - materials science , polycaprolactone , biocompatible material , osseointegration , biomedical engineering , composite material , polymer , surgery , medicine , implant
There is a significant unmet clinical need to prevent amputations due to large bone loss injuries. We are addressing this problem by developing a novel, cost-effective osseointegrated prosthetic solution based on the use of modular pieces, bone bricks, made with biocompatible and biodegradable materials that fit together in a Lego-like way to form the prosthesis. This paper investigates the anatomical designed bone bricks with different architectures, pore size gradients, and material compositions. Polymer and polymer-composite 3D printed bone bricks are extensively morphological, mechanical, and biological characterized. Composite bone bricks were produced by mixing polycaprolactone (PCL) with different levels of hydroxyapatite (HA) and β-tri-calcium phosphate (TCP). Results allowed to establish a correlation between bone bricks architecture and material composition and bone bricks performance. Reinforced bone bricks showed improved mechanical and biological results. Best mechanical properties were obtained with PCL/TCP bone bricks with 38 double zig-zag filaments and 14 spiral-like pattern filaments, while the best biological results were obtained with PCL/HA bone bricks based on 25 double zig-zag filaments and 14 spiral-like pattern filaments.
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