Bone reconstruction: from bioceramics to tissue engineering

被引:289
|
作者
El-Ghannam, A [1 ]
机构
[1] Univ Kentucky, Grad Sch, Ctr Biomed Engn, Lexington, KY 40506 USA
[2] Sch Dent, Ctr Oral Hlth Res, Lexington, KY 40506 USA
关键词
bioceramics; tissue engineering;
D O I
10.1586/17434440.2.1.87
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Over the past 30 years, an enormous array of biomaterials proposed as ideal scaffolds for cell growth have emerged, yet few have demonstrated clinical efficacy. Biomaterials, regardless of whether they are permanent or biodegradable, naturally occurring or synthetic, need to be biocompatible, Ideally osteoinductive, osteoconductive, integrative, porous and mechanically compatible with native bone to fulfill their desired role in bone tissue engineering. These materials provide cell anchorage sites, mechanical stability and structural guidance and in vivo, provide the Interface to respond to physiologic and biologic changes as well as to remodel the extracellular matrix In order to Integrate with the surrounding native tissue. Calcium phosphate ceramics and bioactive glasses were Introduced more than 30 years ago as bone substitutes. These materials are considered bioactive as they bond to bone and enhance bone tissue formation. The bioactivity property has been attributed to the similarity between the surface composition and structure of bioactive materials, and the mineral phase of bone. The drawback In using bioactive glasses and calcium phosphate ceramics is that close proximity to the host bone is necessary to achieve osteoconduction. Even when this is achieved, new bone growth is often strictly limited because these materials are not osteoinductive In nature. Bone has a vast capacity for regeneration from cells with stem cell characteristics. Moreover, a number of different growth factors Including bone morphogenetic proteins, have been demonstrated to stimulate bone growth, collagen synthesis and fracture repair both In vitro and In vivo. Attempts to develop a tissue-engineering scaffold with both osteoconductivity and osteoinductivity have included loading osteoinductive proteins and/or osteogenic cells on the traditional bioactive materials. Yet issues that must be considered for the effective application of bioceramics In the field of tissue engineering are the degree of bioresorption and the poor mechanical strength. The synthesis of a new generation of biomaterials that can specifically serve as tissue engineering scaffolds for drug and cell delivery Is needed. Nanotechnology can provide an alternative way of processing porous bioceramics with high mechanical strength and enhanced bioactivity and resorbability.
引用
收藏
页码:87 / 101
页数:15
相关论文
共 50 条
  • [21] Commentary: Bioceramics and Scaffolds: a Winning Combination for Tissue Engineering
    Denes, Eric
    Barriere, Guislaine
    Poli, Evelyne
    Leveque, Guillaume
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2017, 5
  • [22] Special Issue: Bioceramics, Bioglasses, and Gels for Tissue Engineering
    Dasan, Arish
    Chandrasekar, Ashokraja
    GELS, 2023, 9 (07)
  • [23] Nano-carbonated hydroxyapatite precipitation from abalone shell (Haliotis asinina) waste as the bioceramics candidate for bone tissue engineering
    Permatasari, Hestining A.
    Sari, Mona
    Aminatun
    Suciati, Tri
    Dahlan, Kiagus
    Yusuf, Yusril
    NANOMATERIALS AND NANOTECHNOLOGY, 2021, 11
  • [24] Autogenous cultured bone graft - Bone reconstruction using tissue engineering approach
    Yoshikawa, T
    Ohgushi, H
    ANNALES CHIRURGIAE ET GYNAECOLOGIAE, 1999, 88 (03) : 186 - 192
  • [25] Osseous tissue engineering with gene therapy for facial bone reconstruction
    Lindsey, WH
    LARYNGOSCOPE, 2001, 111 (07): : 1128 - 1136
  • [26] Structural and biological properties of hydroxyfluorapatite containing sodium and potassium and substituted with carbonates bioceramics for bone tissue engineering
    Ben Slimen, Jihen
    Jebahi, Samira
    Del Valle, Luis Javier
    Hidouri, Mustapha
    JOURNAL OF THE AUSTRALIAN CERAMIC SOCIETY, 2024, 60 (05) : 1579 - 1590
  • [27] Synthesis and Characterization of Sintered Sr/Fe-Modified Hydroxyapatite Bioceramics for Bone Tissue Engineering Applications
    Ullah, Ismat
    Gloria, Antonio
    Zhang, Wancheng
    Ullah, Muhammad Wajid
    Wu, Bin
    Li, Wenchao
    Domingos, Marco
    Zhang, Xianglin
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2020, 6 (01) : 375 - 388
  • [28] Characterization approach on the extrusion process of bioceramics for the 3D printing of bone tissue engineering scaffolds
    Zhong, Gaoyan
    Vaezi, Mohammad
    Liu, Ping
    Pan, Lin
    Yang, Shoufeng
    CERAMICS INTERNATIONAL, 2017, 43 (16) : 13860 - 13868
  • [29] Calcium phosphate bioceramics fabricated from extracted human teeth for tooth tissue engineering
    Lim, Ki-Taek
    Suh, Je Duck
    Kim, Jangho
    Choung, Pill-Hoon
    Chung, Jong Hoon
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2011, 99B (02) : 399 - 411
  • [30] Electrospinning of in situ synthesized silica-based and calcium phosphate bioceramics for applications in bone tissue engineering: A review
    Dejob, Lea
    Toury, Berangere
    Tadier, Solene
    Gremillard, Laurent
    Gaillard, Claire
    Salles, Vincent
    ACTA BIOMATERIALIA, 2021, 123 : 123 - 153