Development of a 'mechano-active' scaffold for tissue engineering

被引:51
|
作者
Yang, Y [1 ]
Magnay, JL [1 ]
Cooling, L [1 ]
El Haj, AJ [1 ]
机构
[1] Keele Univ, N Staffordshire Hosp, Sch Med, Ctr Sci & Technol Med, Stoke On Trent ST4 7QB, Staffs, England
关键词
bone; tissue engineering; mechanical loads; calcium channel; biodegradable polymer;
D O I
10.1016/S0142-9612(01)00342-8
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In this study we investigate the potential for manipulating bone cell mechanotranducers in tissue engineering. Membrane ion channels such as voltage operated calcium channels (VOCC) have been shown to be a critical component of the bone cell transduction pathway with agonists and inhibitors of this pathway having profound effects on the load signal. By encapsulating a calcium channel agonist with slow release within a poly(L-lactide) (PLLA) scaffold. we can generate a 'mechano-active' scaffold for use in skeletal tissue engineering. PLLA scaffolds with and without a calcium channel agonist, BAY K8644, were seeded with primary human bone cells or the human MG63 bone cell line and cultured for 1-3 weeks followed by mechanical stimulation with a four-point bending model. Our results show that addition of the agonist for slow release is sufficient to enhance the load-related responses in bone cells within the scaffolds, Specifically. collagen type I expression and the ratio of alkaline phosphatase to protein are elevated in response to cyclical mechanical stimulation of approximately 1000 mustr which is then further enhanced in the 'mechano-active' scaffolds, As the agonists only act when the calcium channels are open by attenuating the calcium flux, the stimulation is specifically targeted to scaffolds subjected to load either in vitro or ultimately in vivo. Our results suggest that manipulating the VOCC and attenuating the opening of the calcium channels may be an effective technique to amplify matrix production via mechanical stimulation which may be applied to bone tissue engineering and potentially engineering of other load-bearing connective tissues. (C) 2002 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:2119 / 2126
页数:8
相关论文
共 50 条
  • [31] Development of Multiple Layers of PLCL Scaffold for Vascular Tissue Engineering
    Pangesty, Azizah Intan
    Todo, Mitsugu
    2018 2ND INTERNATIONAL CONFERENCE ON BIOMEDICAL ENGINEERING (IBIOMED): SMART TECHNOLOGY FOR BETTER SOCIETY, 2018, : 138 - 142
  • [32] Development and optimization of gelatin nanofibrous scaffold for tissue engineering applications
    Samraj, Mark David S.
    Vadodaria, Ketankumar
    JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2022, 71
  • [33] Development and Characterization of a Porcine Mitral Valve Scaffold for Tissue Engineering
    Granados, M.
    Morticelli, L.
    Andriopoulou, S.
    Kalozoumis, P.
    Pflaum, M.
    Iablonskii, P.
    Glasmacher, B.
    Harder, M.
    Hegermann, J.
    Wrede, C.
    Tudorache, I.
    Cebotari, S.
    Hilfiker, A.
    Haverich, A.
    Korossis, Sotirios
    JOURNAL OF CARDIOVASCULAR TRANSLATIONAL RESEARCH, 2017, 10 (04) : 374 - 390
  • [34] SFAlab: image-based quantification of mechano-active ventral actin stress fibers in adherent cells
    Mostert, Dylan
    Grolleman, Janine
    van Turnhout, Mark C.
    Groenen, Bart G. W.
    Conte, Vito
    Sahlgren, Cecilia M.
    Kurniawan, Nicholas A.
    Bouten, Carlijn V. C.
    FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2023, 11
  • [35] Gradient scaffold in tissue engineering
    Wargo, Sara L.
    Kumar, Thangappan Ravi
    Russell, Alan J.
    CELL TRANSPLANTATION, 2006, 15 : S127 - S127
  • [36] Gelatin as scaffold for tissue engineering
    Lorandi, C.
    Migliaresi, C.
    Motta, A.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 : 385 - 385
  • [37] Scaffold design for tissue engineering
    Chen, GP
    Ushida, T
    Tateishi, T
    MACROMOLECULAR BIOSCIENCE, 2002, 2 (02) : 67 - 77
  • [38] Development of the human umbilical vein scaffold for cardiovascular tissue engineering applications
    Daniel, J
    Abe, K
    McFetridge, PS
    ASAIO JOURNAL, 2005, 51 (03) : 252 - 261
  • [39] Development of 3D Printed Biomimetic Scaffold for Tissue Engineering
    Park, Suk-Hee
    Koh, Ung Hyun
    Yang, Dong-Yol
    Lee, Nak-Kyu
    Shin, Jennifer Hyunjong
    2015 15TH INTERNATIONAL CONFERENCE ON CONTROL, AUTOMATION AND SYSTEMS (ICCAS), 2015, : 1958 - 1960
  • [40] Application of radiation crosslinking technique to development of gelatin scaffold for tissue engineering
    Kimura, Atsushi
    Yoshida, Fumiya
    Ueno, Miho
    Taguchi, Mitsumasa
    RADIATION PHYSICS AND CHEMISTRY, 2021, 180