Applications of MEMS technologies in tissue engineering

被引:27
|
作者
Puleo, Christopher M. [1 ]
Yeh, Hsin-Chih [2 ]
Wang, Tza-Huei [1 ,2 ]
机构
[1] Johns Hopkins Univ, Dept Biomed Engn, Baltimore, MD USA
[2] Johns Hopkins Univ, Dept Mech Engn, Baltimore, MD USA
来源
TISSUE ENGINEERING | 2007年 / 13卷 / 12期
关键词
D O I
10.1089/ten.2007.0214
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The success of therapeutic strategies within the fields of regenerative medicine, including tissue engineering, biomaterials engineering, and cell and tissue transplantation science, relies on researchers' understanding of the complex cellular microenvironments that occur within functional tissue. Microfabricated biomedical platforms provide tools for researchers to study cellular response to various stimuli with micro-and nanoscale spatial control. Initial studies utilizing relatively passive means of microenvironmental control have provided the fundamental knowledge required to begin to design microculture platforms that closely mimic these biological systems. In this review, we discuss second-generation cell and tissue culture platforms that utilize active components, borrowed from work in the development of microelectromechanical systems (MEMS). These microsystems offer the unprecedented opportunity to fabricate culture platforms designed to match tissue-specific growth parameters. In addition, the adoption of MEMS components opens up the door for future integration with the burgeoning field of microanalytical systems, providing analytical platforms that retain the sensitivity and resolution required within low-volume, microfluidic culture technologies.
引用
下载
收藏
页码:2839 / 2854
页数:16
相关论文
共 50 条
  • [21] Role of Modern Technologies in Tissue Engineering
    Ali, Qurban
    Malik, Sabeen
    Malik, Arif
    Hafeez, Muhammad Nadeem
    Salman, Said
    ARCHIVES OF NEUROSCIENCE, 2020, 7 (01)
  • [22] Decellularization and Recellularization Technologies in Tissue Engineering
    Fu, Ru-Huei
    Wang, Yu-Chi
    Liu, Shih-Ping
    Shih, Ton-Ru
    Lin, Hsin-Lien
    Chen, Yue-Mi
    Sung, Jiun-Huei
    Lu, Chia-Hui
    Wei, Jing-Rong
    Wang, Zih-Wan
    Huang, Shyh-Jer
    Tsai, Chang-Hai
    Shyu, Woei-Cherng
    Lin, Shinn-Zong
    CELL TRANSPLANTATION, 2014, 23 (4-5) : 621 - 630
  • [23] Core technologies for the development of tissue engineering
    Nerem, RM
    Ku, DN
    Sambanis, A
    TISSUE ENGINEERING FOR THERAPEUTIC USE 2, 1998, 1170 : 19 - 29
  • [24] TECHNOLOGIES OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE
    Sevastianov, V. I.
    VESTNIK TRANSPLANTOLOGII I ISKUSSTVENNYH ORGANOV, 2014, 16 (03): : 93 - 108
  • [25] MEMS devices and applications in aerospace and civil engineering
    Oppenheim, Irving J.
    Journal of Aerospace Engineering, 2003, 16 (02):
  • [26] MEMS devices and applications in aerospace and civil engineering
    Oppenheim, IJ
    JOURNAL OF AEROSPACE ENGINEERING, 2003, 16 (02) : 45 - 45
  • [27] Micropackaging technologies for integrated microsystems: Applications to MEMS and MOEMS
    Najafi, K
    MICROMACHINING AND MICROFABRICATION PROCESS TECHNOLOGY VIII, 2003, 4979 : 1 - 19
  • [28] Electrochemical Micro Technologies for Polymeric MEMS and Biochip Applications
    Almog, R. Ofek
    Sverdlov, Y.
    Fishelson, N.
    Shmilovich, T.
    Rabinovich, E.
    Shacham-Diamand, Y.
    ORGANIC AND BIOLOGICAL ELECTROCHEMISTRY POSTERS (GENERAL) - 216TH ECS MEETING, 2010, 25 (16): : 17 - 21
  • [29] Micropackaging technologies for integrated microsystems: Applications to MEMS and MOEMS
    Najafi, K
    MEMS COMPONENTS AND APPLICATIONS FOR INDUSTRY, AUTOMOBILES, AEROSPACE, AND COMMUNICATION II, 2003, 4981 : XI - XXIX
  • [30] Packaging of bio-MEMS: Strategies, technologies, and applications
    Velten, T
    Ruf, HH
    Barrow, D
    Aspragathos, N
    Lazarou, P
    Jung, E
    Malek, CK
    Richter, M
    Kruckow, J
    IEEE TRANSACTIONS ON ADVANCED PACKAGING, 2005, 28 (04): : 533 - 546