Synthetic versus tissue-engineered implants for joint replacement

被引:0
|
作者
School of Mechanical Engineering, University of Birmingham, Edgbaston, Birmingham, B15 2TT, United Kingdom [1 ]
不详 [2 ]
机构
[1] School of Mechanical Engineering, University of Birmingham, Edgbaston, Birmingham
[2] Department of Bio-Medical Physics and Bio-Engineering, University of Aberdeen, Foresterhill, Aberdeen
来源
Appl. Bionics Biomech. | 2007年 / 4卷 / 179-185期
关键词
Articular cartilage; Cells; Implant; Joint replacement; Synthetic; Tissue engineering;
D O I
10.1080/11762320701816966
中图分类号
学科分类号
摘要
Human synovial joints are remarkable as they can last for a lifetime. However, they can be affected by disease that may lead to destruction of the joint surface. The most common treatment in the advanced stages of joint disease is artificial joint replacement, where the diseased synovial joint is replaced with an artificial implant made from synthetic materials, such as metals and polymers. A new technique for repairing diseased synovial joints is tissue engineering where cells are used to grow replacement tissue. This paper explores the relative merits of synthetic and tissue-engineered implants, using joint replacement as an example. Synthetic joint replacement is a well-established procedure with the advantages of early mobilisation, pain relief and high patient satisfaction. However, synthetic implants are not natural tissues; they can cause adverse reactions to the body and there could be a mismatch in mechanical properties compared to natural tissues. Tissue-engineered implants offer great potential and have major advantages over synthetic implants as they are natural tissue, which should ensure that they are totally biocompatible, have the correct mechanical properties and integrate well with the existing tissue. However, there are still many limitations to be addressed in tissue engineering such as scaling up for production, bioreactor design, appropriate regulation and the potential for disease to attack the new tissue-engineered implant. © 2007 Taylor & Francis.
引用
收藏
页码:179 / 185
页数:6
相关论文
共 50 条
  • [41] Bioreactor mimicking knee-joint movement for the regeneration of tissue-engineered cartilage
    Jeong, Hun-Jin
    Gwak, So-Jung
    Kang, Nae-Un
    Hong, Myoung Wha
    Kim, Young Yul
    Cho, Young-Sam
    Lee, Seung-Jae
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2019, 33 (04) : 1841 - 1850
  • [42] Hydrogel Coating Optimization to Augment Engineered Soft Tissue Mechanics in Tissue-Engineered Blood Vessels
    Wonski, Bryan T.
    Fisher, Bruce
    Lam, Mai T.
    BIOENGINEERING-BASEL, 2023, 10 (07):
  • [43] Construction of tissue-engineered osteochondral composites and repair of large joint defects in rabbit
    Deng, Tianzheng
    Lv, Jing
    Pang, Jianliang
    Liu, Bing
    Ke, Jie
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2014, 8 (07) : 546 - 556
  • [44] The mechanics of tissue-engineered temporomandibular joint discs: Current status and prospects for enhancement
    She, Yilin
    Sun, Yixin
    Jiang, Nan
    JOURNAL OF BIOMATERIALS APPLICATIONS, 2024, 39 (04) : 269 - 287
  • [45] Effect of joint mimicking loading system on zonal organization into tissue-engineered cartilage
    Park, In-Su
    Choi, Woo Hee
    Park, Do Young
    Park, So Ra
    Park, Sang-Hyug
    Min, Byoung-Hyun
    PLOS ONE, 2018, 13 (09):
  • [46] Design and characterization of a tissue-engineered bilayer scaffold for osteochondral tissue repair
    Giannoni, Paolo
    Lazzarini, Erica
    Ceseracciu, Luca
    Barone, Alberto C.
    Quarto, Rodolfo
    Scaglione, Silvia
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2015, 9 (10) : 1182 - 1192
  • [47] Negative Printing for the Reinforcement of In Situ Tissue-Engineered Cartilage
    Doyle, Stephanie E.
    Snow, Finn
    Onofrillo, Carmine
    Di Bella, Claudia
    O'Connell, Cathal D.
    Pirogova, Elena
    Duchi, Serena
    TISSUE ENGINEERING PART A, 2025, 31 (1-2) : 45 - 55
  • [48] In vitro study of bioactivity of homemade tissue-engineered periosteum
    Zhao, Lin
    Zhao, Junli
    Yu, Jiajia
    Zhao, Xiaofei
    Chen, Qi
    Huang, Yanfeng
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2016, 58 : 1170 - 1176
  • [49] pH regulates the lumen diameter of tissue-engineered capillaries
    Wang, Xiaolin
    Li, Jing
    Bian, Yongqian
    Zhao, Congying
    Li, Jinqing
    Li, Xueyong
    EXPERIMENTAL AND THERAPEUTIC MEDICINE, 2022, 23 (04)
  • [50] Engineering of fibrillar decorin matrices for a tissue-engineered trachea
    Hinderer, Svenja
    Schesny, Marianne
    Bayrak, Alexandra
    Ibold, Bettina
    Hampel, Martina
    Walles, Thorsten
    Stock, Ulrich A.
    Seifert, Martina
    Schenke-Layland, Katja
    BIOMATERIALS, 2012, 33 (21) : 5259 - 5266