Tissue engineering of meniscal cartilage

被引:0
|
作者
Neves, AA [1 ]
Medcalf, N [1 ]
Brindle, KM [1 ]
机构
[1] Univ Cambridge, Dept Biochem, Cambridge CB2 1GA, England
关键词
D O I
暂无
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Fifty years ago it was shown that removal of a diseased meniscus in the knee joint led in the long term to cartilage degeneration and bone remodelling (Fairbank, 1948). This observation changed substantially the therapeutic approach adopted, with the ruptured meniscus being repaired instead of removed. However, this treatment is only feasible when the meniscal tissue is of good quality, which is often not the situation in the clinic. Concerns regarding disease transmission, immunogenicity, sizing, and availability of meniscal allografts have stimulated the search for a tissue-engineered (TE) structure that could replace the function of the native tissue. Previous studies have shown the relevance of fluid flow in the in vitro synthesis of cartilaginous tissues (Rotter et al., 1998). The constant availability of fresh media, the mechanical action of shear stress on the cells and the ability to transport nutrients through an increasingly dense extracellular matrix (ECM), are some of the reasons that favor the use of perfusion culture for the generation of bioartificial cartilage. However, optimal flow parameters for the generation of meniscal tissue have yet to be defined in such systems. We report here the use of perfusion culture and two powerful non-invasive techniques, magnetic resonance imaging (MRI) and spectroscopy (MRS), to characterize the flow profile inside a fixed bed bioreactor. the growth and energetics of the cells and the kinetics of ECM deposition. These techniques were used to correlate non-invasively the properties of the generated bioartificial meniscal cartilage with fluid dynamics and permeability measurements. An ideal flow rate for operation of the bioreactor (40 mlmin(-1)) was derived which optimises structural properties and ECM production.
引用
收藏
页码:571 / 573
页数:3
相关论文
共 50 条
  • [1] Tissue engineering of meniscal cartilage using perfusion culture
    Neves, AA
    Medcalf, N
    Brindle, KM
    REPARATIVE MEDICINE: GROWING TISSUES AND ORGANS, 2002, 961 : 352 - 355
  • [2] Meniscal Tissue Engineering
    Lubowitz, James H.
    ARTHROSCOPY-THE JOURNAL OF ARTHROSCOPIC AND RELATED SURGERY, 2015, 31 (05): : 956 - 956
  • [3] Cartilage Tissue Engineering
    Moreira-Teixeira, Liliana S.
    Georgi, Nicole
    Leijten, Jeroen
    Wu, Ling
    Karperien, Marcel
    CARTILAGE AND BONE DEVELOPMENT AND ITS DISORDERS, 2011, 21 : 102 - 115
  • [4] Cartilage tissue engineering
    Yaremchuk, M. J.
    Randolph, M. A.
    PROCEEDINGS OF THE 5TH INTERNATIONAL CONGRESS OF MAXILLOFACIAL AND CRANIOFACIAL DISTRACTION, 2006, : 5 - +
  • [5] Tissue engineering of cartilage
    Randolph, MA
    Anseth, K
    Yaremchuk, MJ
    CLINICS IN PLASTIC SURGERY, 2003, 30 (04) : 519 - +
  • [6] CARTILAGE TISSUE ENGINEERING
    Chang, Chih-Hung
    Lin, Feng-Huei
    Kuo, Tzong-Fu
    Liu, Hwa-Chang
    BIOMEDICAL ENGINEERING-APPLICATIONS BASIS COMMUNICATIONS, 2005, 17 (02): : 61 - 71
  • [7] Cartilage tissue engineering
    Köse, GT
    Hasirci, V
    BIOMATERIALS: FROM MOLECULES TO ENGINEERED TISSUES, 2004, 553 : 317 - 329
  • [8] Tissue engineering of cartilage
    Hepp, P.
    Bader, A.
    Josten, C.
    Rose, T.
    Schulz, R.
    ARTHROSKOPIE, 2005, 18 (03) : 233 - 238
  • [9] Engineering cartilage tissue
    Chung, Cindy
    Burdick, Jason. A.
    ADVANCED DRUG DELIVERY REVIEWS, 2008, 60 (02) : 243 - 262
  • [10] Tensioned synoviocyte neotissues for meniscal tissue engineering: Closer to meniscal tissue repair in dogs
    Smolders, Lucas A.
    Hurter, Karin
    VETERINARY JOURNAL, 2014, 200 (03): : 351 - 352