• DocumentCode
    1398946
  • Title

    On-Chip Single Embryo Coculture With Microporous-Membrane-Supported Endometrial Cells

  • Author

    Kimura, Hiroshi ; Nakamura, Hiroko ; Akai, Tomonori ; Yamamoto, Takatoki ; Hattori, Hideshi ; Sakai, Yasuyuki ; Fujii, Teruo

  • Author_Institution
    Inst. of Ind. Sci., Univ. of Tokyo, Tokyo, Japan
  • Volume
    8
  • Issue
    4
  • fYear
    2009
  • Firstpage
    318
  • Lastpage
    324
  • Abstract
    In vitro culture (IVC) of the mammalian embryo is an essential technique in reproductive technology and other related life science disciplines. Although embryos are usually cultured in groups, a single embryo culture has been highly desired for IVC to investigate developmental processes. In this study, we proposed and developed the first single embryo coculture device, which allows making an array of a single embryo coculture with endometrial cells by controlling the culture environment in a microfluidic device. To realize this concept, we investigated three key issues: selection of a culture medium for the embryo coculture with endometrial cells using a mouse embryo and endometrial cells, evaluation of an on-microporous-membrane coculture of endometrial cells and an embryo to control the polarization of endometrial cells on the membrane, and evaluation of the coculture of endometrial cells and the embryo in the microfluidic device. We successfully obtained an array of a single coculture of embryo with endometrial cells in a microfluidic device. This concept will open and enhance the management of an individual embryo for assisted reproductive technology, livestock breeding, and fundamental stage research by further development.
  • Keywords
    bioMEMS; biological specimen preparation; biomembranes; cellular biophysics; gynaecology; lab-on-a-chip; microfluidics; embryo coculture; endometrial cells; in vitro culture; microfluidics; reproductive technology; Agriculture; Biomembranes; Chemicals; Embryo; Humans; In vitro; Mice; Microfluidics; Polarization; Subspace constraints; in vitro culture (IVC); Endometrial cell; microfluidic device; microporous membrane; single embryo coculture; Animals; Biomedical Engineering; Coculture Techniques; Culture Media; Embryo Culture Techniques; Endometrium; Equipment Design; Female; Fertilization in Vitro; Male; Membranes, Artificial; Mice; Mice, Inbred ICR; Micropore Filters;
  • fLanguage
    English
  • Journal_Title
    NanoBioscience, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1241
  • Type

    jour

  • DOI
    10.1109/TNB.2009.2035275
  • Filename
    5401111