Biomaterials and Implant Biocompatibility
dc.contributor.author | Cîmpean, Ani?oara | * |
dc.contributor.author | Miculescu, Florin | * |
dc.date.accessioned | 2021-02-11T09:10:29Z | |
dc.date.available | 2021-02-11T09:10:29Z | |
dc.date.issued | 2020 | * |
dc.date.submitted | 2020-04-07 23:07:09 | * |
dc.identifier | 44800 | * |
dc.identifier.uri | https://directory.doabooks.org/handle/20.500.12854/42267 | |
dc.description.abstract | The scientific advances in life sciences and engineering are constantly challenging, expanding, and redefining concepts related to the biocompatibility and safety of medical devices. New biomaterials, new products, and new testing regimes are being introduced to | * |
dc.language | English | * |
dc.subject | Q1-390 | * |
dc.subject | QC1-999 | * |
dc.subject.classification | bic Book Industry Communication::G Reference, information & interdisciplinary subjects::GP Research & information: general | en_US |
dc.subject.other | bioplolymers | * |
dc.subject.other | static magnetic field | * |
dc.subject.other | serum amyloid A | * |
dc.subject.other | regeneration | * |
dc.subject.other | bone grafts | * |
dc.subject.other | osteoblast | * |
dc.subject.other | laser direct writing | * |
dc.subject.other | three-dimensional co-culture | * |
dc.subject.other | bioactive glass | * |
dc.subject.other | bone graft | * |
dc.subject.other | adipogenic mesenchymal stem cells | * |
dc.subject.other | composite | * |
dc.subject.other | review | * |
dc.subject.other | artificial bone substitute | * |
dc.subject.other | biofilm | * |
dc.subject.other | lactoferrin | * |
dc.subject.other | polymer composite | * |
dc.subject.other | flow cytometry | * |
dc.subject.other | haptoglobin | * |
dc.subject.other | zinc | * |
dc.subject.other | copper ions | * |
dc.subject.other | local drug delivery | * |
dc.subject.other | hydroxyapatite | * |
dc.subject.other | in vitro kinetic studies | * |
dc.subject.other | absorption | * |
dc.subject.other | angiogenesis | * |
dc.subject.other | in vitro testing | * |
dc.subject.other | carbonate apatite | * |
dc.subject.other | autogenous particulate dentin graft | * |
dc.subject.other | microfiber scaffold | * |
dc.subject.other | coating techniques | * |
dc.subject.other | dissolution rate | * |
dc.subject.other | serum protein fractions | * |
dc.subject.other | mesenchymal stem cells | * |
dc.subject.other | bone levels | * |
dc.subject.other | SEM | * |
dc.subject.other | silver | * |
dc.subject.other | demineralized bone matrix | * |
dc.subject.other | articular cartilage defect | * |
dc.subject.other | seashell | * |
dc.subject.other | surface modification | * |
dc.subject.other | single-walled carbon nanotubes | * |
dc.subject.other | dolomitic marble | * |
dc.subject.other | osteogenesis | * |
dc.subject.other | corrosion resistance | * |
dc.subject.other | contact lens | * |
dc.subject.other | porous SHS TiNi | * |
dc.subject.other | diamond nanoparticles | * |
dc.subject.other | pre-osteoblasts | * |
dc.subject.other | gentamicin | * |
dc.subject.other | mechanism | * |
dc.subject.other | point defects | * |
dc.subject.other | cell proliferation | * |
dc.subject.other | sodium alginate | * |
dc.subject.other | MSN | * |
dc.subject.other | laser radiation | * |
dc.subject.other | protein–polymer matrices | * |
dc.subject.other | crystallite size | * |
dc.subject.other | extracellular matrix mineralization | * |
dc.subject.other | adipose-derived stem cells | * |
dc.subject.other | cell adhesion and morphology | * |
dc.subject.other | bone infection | * |
dc.subject.other | titanium implants | * |
dc.subject.other | signaling pathways | * |
dc.subject.other | bone substitution | * |
dc.subject.other | plasma chemical oxidation | * |
dc.subject.other | tissue engineering | * |
dc.subject.other | C-reactive protein | * |
dc.subject.other | bone tissue engineering | * |
dc.subject.other | osteogenic differentiation | * |
dc.subject.other | smart dentin grinder | * |
dc.subject.other | in vivo testing | * |
dc.subject.other | in vitro study | * |
dc.subject.other | nanowelding | * |
dc.subject.other | image analysis | * |
dc.subject.other | superparamagnetic scaffold | * |
dc.subject.other | ?-tricalcium phosphate | * |
dc.subject.other | biopolymer | * |
dc.subject.other | antibacterial coating | * |
dc.subject.other | hydrogel sphere | * |
dc.subject.other | neck design | * |
dc.subject.other | Staphylococcus aureus | * |
dc.subject.other | biocompatibility | * |
dc.subject.other | CaCO3 derived-calcium phosphates | * |
dc.subject.other | dental implants | * |
dc.subject.other | colon cancer cells | * |
dc.subject.other | materials | * |
dc.subject.other | spaced TiO2 nanotubes | * |
dc.subject.other | drug delivery system | * |
dc.subject.other | polyethyleneimine | * |
dc.subject.other | hybrid dog | * |
dc.subject.other | fish gelatin | * |
dc.subject.other | in vitro model | * |
dc.subject.other | MC3T3-E1 | * |
dc.subject.other | cell membrane | * |
dc.subject.other | rheological similarity | * |
dc.subject.other | root canal sealer | * |
dc.subject.other | real-time live-cell imaging technology | * |
dc.subject.other | human teeth | * |
dc.subject.other | biocompatible metals | * |
dc.subject.other | peri-implantitis | * |
dc.subject.other | sheep | * |
dc.subject.other | cytotoxicity | * |
dc.subject.other | biomedical implant | * |
dc.subject.other | soft tissue dimensions | * |
dc.subject.other | ground teeth | * |
dc.subject.other | endothelial cell | * |
dc.subject.other | bioceramics | * |
dc.subject.other | modulated synthesis set-up | * |
dc.subject.other | microRNA | * |
dc.subject.other | tooth graft | * |
dc.subject.other | autologous graft | * |
dc.subject.other | 3D printing | * |
dc.subject.other | caries | * |
dc.title | Biomaterials and Implant Biocompatibility | * |
dc.type | book | |
oapen.identifier.doi | 10.3390/books978-3-03928-217-3 | * |
oapen.relation.isPublishedBy | 46cabcaa-dd94-4bfe-87b4-55023c1b36d0 | * |
oapen.relation.isbn | 9783039282166 | * |
oapen.relation.isbn | 9783039282173 | * |
oapen.pages | 420 | * |
oapen.edition | 1st | * |
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