Biomaterials for Bone Tissue Engineering

Bone tissue engineering aims to develop artificial bone substitutes that partially or totally restore the natural regeneration capability of bone tissue lost under circumstances of injury, significant defects, or diseases such as osteoporosis. In this context, biomaterials are the keystone of the me...

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Main Author: Sanz, José Antonio (auth)
Format: Book Chapter
Published: MDPI - Multidisciplinary Digital Publishing Institute 2020
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Online Access:Get Fullteks
DOAB: description of the publication
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100 1 |a Sanz, José Antonio  |4 auth 
245 1 0 |a Biomaterials for Bone Tissue Engineering 
260 |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2020 
300 |a 1 electronic resource (244 p.) 
506 0 |a Open Access  |2 star  |f Unrestricted online access 
520 |a Bone tissue engineering aims to develop artificial bone substitutes that partially or totally restore the natural regeneration capability of bone tissue lost under circumstances of injury, significant defects, or diseases such as osteoporosis. In this context, biomaterials are the keystone of the methodology. Biomaterials for bone tissue engineering have evolved from biocompatible materials that mimic the physical and chemical environment of bone tissue to a new generation of materials that actively interacts with the physiological environment, accelerating bone tissue growth. Mathematical modelling and simulation are important tools in the overall methodology. This book presents an overview of the current investigations and recent contributions in the field of bone tissue engineering. It includes several successful examples of multidisciplinary collaboration in this transversal area of research. The book is intended for students, researchers, and professionals of a number of disciplines, such as engineering, mathematics, physics, chemistry, biomedicine, biology, and veterinary. The book is composed of an editorial section and 16 original research papers authored by leading researchers of this discipline from different laboratories across the world 
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546 |a English 
653 |a bone morphogenesis proteins 
653 |a n/a 
653 |a finite element 
653 |a bone tissue engineering 
653 |a electrically active implants 
653 |a prediction marker 
653 |a vertebra 
653 |a direct current electric field 
653 |a loose sintering 
653 |a Lattice Boltzmann method 
653 |a Pelvis 
653 |a automatic segmentation 
653 |a MSCs 
653 |a additive manufacturing 
653 |a finite element method 
653 |a bioelectromagnetism 
653 |a optimization 
653 |a scaffold design 
653 |a cone beam computed tomography 
653 |a computational modelling 
653 |a bone regeneration 
653 |a oxygen delivery 
653 |a biomaterials 
653 |a bone tissue 
653 |a spark plasma sintering 
653 |a critical size defect 
653 |a musculoskeletal modelling 
653 |a resonance frequency analysis 
653 |a minipig 
653 |a numerical methods in bioengineering 
653 |a computational fluid dynamics 
653 |a maxillofacial 
653 |a osteoporosis 
653 |a sliding window 
653 |a osseointegration 
653 |a mass transfer 
653 |a substrate-mediated electrical stimulation 
653 |a Fixation design 
653 |a dental implants 
653 |a human dental pulp stem cells 
653 |a numerical results 
653 |a elastoplasticity 
653 |a bone tissue regeneration 
653 |a finite-element simulation 
653 |a 3D-printed implant 
653 |a selective laser melting 
653 |a Lagrangian scalar tracking 
653 |a cortical bone 
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653 |a powder metallurgy 
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653 |a culturing protocol 
653 |a bone adaptation 
653 |a stem cell 
653 |a Bone tumor 
653 |a trabecular bone score 
653 |a Xenografts 
653 |a triply periodic minimal surfaces 
653 |a computed tomography 
653 |a multiscale analysis 
653 |a cartilage 
653 |a digital image correlation 
653 |a osteo-differentiation 
653 |a wollastonite 
653 |a transport 
653 |a finite element analysis 
653 |a bone marrow 
653 |a fracture risk 
653 |a von Mises stress 
653 |a electric stimulation 
653 |a mechanical behaviour 
653 |a adipogenesis 
653 |a biomaterial applications 
653 |a computational mechanics 
653 |a Ti6Al4V scaffolds 
653 |a finite elements 
653 |a Otsu's method 
653 |a 3D virtual surgical plan 
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