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Tissue-engineered based bone graft subasedutes are the alternative option.
In this study, injection molding of three poly lactic acid (PLA) based bone screws was simulated and optimized through minimizing the shrinkage and warpage of the bone screws.
Chitosan based bone graft substitutes are biocompatible, biodegradable, osteoconductive, osteoinductive and structurally similar to bone, with excellent mechanical strength and cost effectiveness.
The effect of the implant material on the bone remodeling is evaluated by analyzing the loss of bone density following a strain magnitude based bone remodeling theory.
Wilcoxon tests were also used to compare microCT based bone morphology between baseline (day −1) and completion (day 21).
Our previous work has shown that vascularization is an early event in cell based bone repair approaches [ 7].
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The obtained data suggest that the chitosan based bone-like composites could be potential candidates for biomedical applications.
The materials used, six injectable cements and six pre-shaped granule types, are all calcium-phosphate based bone-defect fillers, mainly for non-weight-bearing applications.
In order to elucidate changes in bone cell metabolism induced by ionizing radiation, ground-based bone cell models have been developed.
Moreover, high-resolution imaging outperformed by 28% the classical X-ray-based bone mineral density as a fracture predictor.
Bionanoparticles based on filamentous phages or flexuous viruses are interesting candidates for meeting the challenges of tailoring biomineralization in hydrogel-based bone tissue substitutes.
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