Bioreactor strategies for tissue-engineered osteochondral constructs: Advantages, present situations and future trends

被引:15
作者
Niu, Xiaolian [1 ]
Xu, Zhiwei [2 ]
Di, Mingzhao [1 ]
Huang, Di [3 ]
Li, Xiaoming [1 ]
机构
[1] Beihang Univ, Beijing Adv Innovat Ctr Biomed Engn, Sch Biol Sci & Med Engn, Key Lab Biomech & Mechanobiol,Minist Educ, Beijing 100083, Peoples R China
[2] Hebei North Univ, Coll Lab Med, Zhangjiakou 075000, Peoples R China
[3] Taiyuan Univ Technol, Inst Biomed Engn, Shanxi Key Labratory Mat Strength & Struct Impact, Taiyuan 030024, Peoples R China
基金
中国国家自然科学基金;
关键词
Bioreactor strategies; Mechanical stimulation; Dynamic cultivations; Stress protocol; Tissue -engineered osteochondral construct; MESENCHYMAL STEM-CELLS; HYDROSTATIC-PRESSURE; IN-VITRO; ARTICULAR-CARTILAGE; BONE-FORMATION; MECHANICAL-PROPERTIES; PERFUSION CULTURE; CARBON NANOTUBES; MATRIX SYNTHESIS; DIFFERENTIATION;
D O I
10.1016/j.compositesb.2023.110736
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The aim of osteochondral tissue engineering is to achieve the complex, functional and three-dimensional tissue regeneration under well defined, controlled and reproducible conditions in vitro. To achieve tissue-engineered products in vitro that incorporate rapidly in vivo with healthy tissue, it is essential to develop highperformance cell/scaffold culture systems that mimic the dynamics of the in vivo environment. Bioreactors could provide specific physicochemical culture environment, suitable mechanical stimulation and controlled condition for the development of osteochondral constructs in vitro. This review highlighted the multifunction of bioreactor in tissue engineering, and presented microenvironment and biomechanics of native osteochondral tissue, to illustrate the necessity of establishing osteochondral constructs by bioreactor. Then, we especially emphasized the advantages and limitations of various bioreactors. Furthermore, we systematically summarized and discussed the development of bioreactor-based production systems for bone, cartilage and osteochondral tissue engineering in recent years. Finally, we made a simple conclusion and offered perspectives of bioreactorbased osteochondral tissue engineering. This review aims to serve as a reference for incorporating bioreactor strategies which could provide mechanical stimulation and physicochemical culture environment into the osteochondral construct culture regimens.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Effect of seeding technique and scaffold material on bone formation in tissue-engineered constructs
    Schliephake, H.
    Zghoul, N.
    Jaeger, V.
    van Griensven, M.
    Zeichen, J.
    Gelinsky, M.
    Wuelfing, T.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2009, 90A (02) : 429 - 437
  • [32] An Overview of Methods for the In Vivo Evaluation of Tissue-Engineered Skin Constructs
    Lammers, Gerwen
    Verhaegen, Pauline D. H. M.
    Ulrich, Magda M. W.
    Schalkwijk, Joost
    Middelkoop, Esther
    Weiland, Daniela
    Nillesen, Suzan T. M.
    Van Kuppevelt, Toin H.
    Daamen, Willeke F.
    TISSUE ENGINEERING PART B-REVIEWS, 2011, 17 (01) : 33 - 55
  • [33] Bioreactor Development for the Study of Angiogenesis within Tissue Engineered Constructs
    Frese, J.
    Motejlek, K.
    Schmitz-Rode, T.
    Neulen, J.
    Jockenhoevel, S.
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING, VOL 25, PT 10: BIOMATERIALS, CELLULAR AND TISSUE ENGINEERING, ARTIFICIAL ORGANS, 2009, 25 (10): : 150 - +
  • [34] Construction of tissue-engineered bone using a bioreactor and platelet-rich plasma
    Wang, Dong
    Jiang, Honglei
    Wang, Shuzhen
    Li, Huibo
    Zhang, Huawu
    Zhao, Lei
    Peng, Tao
    Cao, Zhong
    Sun, Shui
    EXPERIMENTAL AND THERAPEUTIC MEDICINE, 2014, 8 (02) : 413 - 418
  • [35] Mechanical evaluation of a tissue-engineered zone of calcification in a bone-hydrogel osteochondral construct
    Hollenstein, Jerome
    Terrier, Alexandre
    Cory, Esther
    Chen, Albert C.
    Sah, Robert L.
    Pioletti, Dominique P.
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2015, 18 (03) : 332 - 337
  • [36] A Disposable Bioreactor for Culturing and Testing of Tissue-engineered Heart Valves
    Neerincx, P. E.
    Meijer, H. E. H.
    INTERNATIONAL POLYMER PROCESSING, 2010, 25 (02) : 149 - 158
  • [37] Controlled cyclic stretch bioreactor for tissue-engineered heart valves
    Syedain, Zeeshan H.
    Tranquillo, Robert T.
    BIOMATERIALS, 2009, 30 (25) : 4078 - 4084
  • [38] The Maturity of Tissue-Engineered Cartilage In Vitro Affects the Repairability for Osteochondral Defect
    Jin, Cheng Zhe
    Cho, Jae-Ho
    Choi, Byung Hyune
    Wang, Li Ming
    Kim, Moon Suk
    Park, So Ra
    Yun, Jung Ho
    Oh, Hyun Ju
    Min, Byoung-Hyun
    TISSUE ENGINEERING PART A, 2011, 17 (23-24) : 3057 - 3065
  • [39] Strategies in cell-free tissue-engineered vascular grafts
    Yuan, Haoyong
    Chen, Chunyang
    Liu, Yuhong
    Lu, Ting
    Wu, Zhongshi
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2020, 108 (03) : 426 - 445
  • [40] Repair of osteochondral defect with tissue-engineered chondral plug in a rabbit model
    Ito, Y
    Ochi, M
    Adachi, N
    Sugawara, K
    Yanada, S
    Ikada, Y
    Ronakorn, P
    ARTHROSCOPY-THE JOURNAL OF ARTHROSCOPIC AND RELATED SURGERY, 2005, 21 (10) : 1155 - 1163