Bioactive ceramics: from bone grafts to tissue engineering

被引:136
|
作者
Salinas, Antonio J. [1 ,2 ]
Vallet-Regi, Maria [1 ,2 ]
机构
[1] Univ Complutense Madrid, Fac Farm, Dept Quim Inorgan & Bioinorgan, E-28040 Madrid, Spain
[2] Networking Res Ctr Bioengn Biomat & Nanomed CIBER, Madrid, Spain
关键词
CALCIUM-PHOSPHATE FORMATION; OF-THE-ART; IN-VITRO; COMPOSITE SCAFFOLDS; APATITE FORMATION; HYDROXYAPATITE COATINGS; GLASS; BIOCERAMICS; REGENERATION; SURFACE;
D O I
10.1039/c3ra00166k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Bioactive ceramics bond directly with living tissues when implanted. For this reason they have been profusely investigated as biomaterials. The first synthetic bioactive materials were specific compositions of glasses and glass ceramics as well as sintered hydroxyapatite. However, all these bioceramics are brittle, and for this reason their main application for years has been as a grafting material for the filling of small bone defects and periodontal anomalies. The efforts to expand the applications of bioactive bioceramics were mainly focused in two areas: (A) the synthesis of organic-inorganic hybrids to apply in tissue engineering and of ceramic coatings on metallic substrates for applications requiring good mechanical behavior, and (B) the synthesis of porous materials with very quick bioactive response that can be upgraded by adding biomolecules or therapeutic inorganic ions to be used in bone tissue engineering. For these developments, the in vitro studies in solutions mimicking blood plasma played a major role. At the present, it is universally considered that both bioactive and biodegradable materials are going to play a central role in the fabrication of porous scaffolds that after being decorated with cells and signals form constructs: basic elements of tissue engineering. This article reviews the pathway followed by the bioactive materials from their original applications in bone grafts to the present day where they are widely investigated as porous scaffolds for bone tissue engineering. After defining the concept of bioactivity, important bioactive materials will be listed in this article. Then, the specific characteristics of bioactive materials when used in bulk or coatings as well as the comparison with biodegradable materials will be presented. Finally, and after describing the in vitro studies for the evaluation of bioactive ceramics, the main characteristics of template glasses, compared with conventional sol-gel glasses, and the advantages of using porous bioactive ceramics to obtain scaffolds for bone tissue engineering will be explained.
引用
收藏
页码:11116 / 11131
页数:16
相关论文
共 50 条
  • [41] Selective laser sintering of bioactive composite matrices for bone tissue engineering
    Antonov E.N.
    Barinov S.M.
    Vakhrushev I.V.
    Komlev V.S.
    Popov V.K.
    Fedotov A.Y.
    Yarygin K.N.
    Inorganic Materials: Applied Research, 2015, 6 (02) : 171 - 178
  • [42] Electrospun bioactive nanocomposite scaffolds of polycaprolactone and nanohydroxyapatite for bone tissue engineering
    Thomas, V
    Jagani, S
    Johnson, K
    Jose, MV
    Dean, DR
    Vohra, YK
    Nyairo, E
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2006, 6 (02) : 487 - 493
  • [43] Matrices and scaffolds for delivery of bioactive molecules in bone and cartilage tissue engineering
    Lee, Soo-Hong
    Shin, Heungsoo
    ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (4-5) : 339 - 359
  • [44] Fabrication and Properties of Polycaprolactone Composites Containing Calcium Phosphate-Based Ceramics and Bioactive Glasses in Bone Tissue Engineering: A Review
    Hajiali, Faezeh
    Tajbakhsh, Saeid
    Shojaei, Akbar
    POLYMER REVIEWS, 2018, 58 (01) : 164 - 207
  • [45] New fabrication methods of bioactive and biodegradable scaffolds for bone tissue engineering
    Jung, Youngmee
    Kim, Su Hee
    Kim, Sang-Heon
    Kim, Soo Hyun
    JOURNAL OF CELLULAR PLASTICS, 2011, 47 (03) : 261 - 270
  • [46] Development of bioactive porous α-TCP/HAp beads for bone tissue engineering
    Asaoka, Teruo
    Ohtake, Shoji
    Furukawa, Katsuko S.
    Tamura, Akito
    Ushida, Takashi
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2013, 101 (11) : 3295 - 3300
  • [47] Electrospun polycaprolactone/gelatin/bioactive glass nanoscaffold for bone tissue engineering
    Shirani, Keyvan
    Nourbakhsh, Mohammad Sadegh
    Rafienia, Mohammad
    INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2019, 68 (10) : 607 - 615
  • [48] Chitosan (PEO)/bioactive glass hybrid nanofibers for bone tissue engineering
    Talebian, Sepehr
    Mehrali, Mehdi
    Mohan, Saktiswaren
    Raghavendran, Hanumantha Rao Balaji
    Mehrali, Mohammad
    Khanlou, Hossein Mohammad
    Kamarul, Tunku
    Afifi, Amalina Muhammad
    Abass, Azlina Amir
    RSC ADVANCES, 2014, 4 (90) : 49144 - 49152
  • [49] Strontium-substituted bioactive glass coatings for bone tissue engineering
    Lotfibakhshaiesh, Nasrin
    Gentleman, Eileen
    Hill, Robert
    Stevens, Molly
    CLINICAL BIOCHEMISTRY, 2011, 44 (13) : S36 - S36
  • [50] 3D bioactive composite scaffolds for bone tissue engineering
    Turnbull, Gareth
    Clarke, Jon
    Picard, Frederic
    Riches, Philip
    Jia, Luanluan
    Han, Fengxuan
    Li, Bin
    Shu, Wenmiao
    BIOACTIVE MATERIALS, 2018, 3 (03) : 278 - 314