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Titlebook: Biomaterials for Musculoskeletal Regeneration; Applications Bikramjit Basu,Sourabh Ghosh Book 2017 Springer Nature Singapore Pte Ltd. 2017

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Case Study: Hydroxyapatite Based Microporous/Macroporous Scaffolds, in the range of 100–300 μm. In the first part of this chapter, the results will be summarized to illustrate how hydroxyapatite scaffolds with micro/mesoscale porosity in the range of 1–50 μm can be produced using the polymer blend method using PMMA (poly methyl methacrylate) as porogenous template.
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Case Study: Osseointegration of Strontium Containing Glass Ceramic,one resorption and increased bone regeneration at the implant interface. Long term implantation of metal-based joint replacements often results in corrosion and particle release, initiating chronic inflammation leading onto osteoporosis of host bone. An alternative solution is the coating of metal i
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,Processing, Tensile and Fracture Properties of Injection Molded HDPE–Al2O3–HAp Hybrid Composites,ced mechanical properties and good biocompatibility properties. The processing related concerns in injection molding route are discussed in reference toaddition. The tensile and flexural fracture properties are analyzed. The cytocompatibility with osteoblast-like cells and . mineralization are also
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Case Study: 3D Printed Cartilage,ld be inflicted due to degenerative disease or traumatic injury. However, despite significant efforts, development of load bearing functional cartilage remains elusive. 3D bioprinting offers a fascinating approach to replicate the complex anatomical cartilaginous tissue architecture by precise deliv
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Case Study: Development of Constructs for Maxillofacial Reconstruction, in complete craniofacial restoration. Replicating the complex 3D architecture and functional dynamics of maxillofacial bone tissue is a challenging proposition which aggravates the need for a custom-made, on demand tissue replacement strategy for rendering patient specificity which could not be ach
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A Way Forward,ng chapters emphasize that multidisciplinary efforts are required to establish such patient-specific implants. Finite element (FE)modelling is used to predict the site-specific mechanical properties, which in-turn requires 3D reconstructed models of macroscopic biological entities based on CT/MRI sc
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