Title :
Electrochemical bio-lithography for in situ control of cellular adhesion and growth on a chip
Author :
Nishizawa, M. ; Kaji, H.
Author_Institution :
Dept. of Bioeng. & Robotics, Tohoku Univ., Sendai, Japan
Abstract :
Controlling the interfaces between cells and materials is important subject for a wide range of research fields such as cell biology, tissue engineering, and biomedical devices. Here we report a novel electrochemical method to direct the adhesion and growth of mammalian cells on a substrate during cultivation in situ, named "Electrochemical Bio-Lithography". We found that the cell-repellent nature of the albumin- or heparin-coated substrates can be locally switched to cell-adhesive, by treatment with hypobromous acid electrochemically generated at the tip of the scanning microelectrode. Since this technique can be conducted under typical physiological conditions, we were able to direct cellular proliferation and migration by drawing adhesive micropatterns over the preexisting cellular pattern. The integration of this electrochemical system into a microfluidic device will provide a novel type of cell-chip, which enables on-demand immobilization of cells just prior to the use of devices.
Keywords :
adhesion; biomedical electronics; cell motility; electrochemical electrodes; microelectrodes; microfluidics; nanolithography; nanopatterning; soft lithography; tissue engineering; adhesive micropatterns; albumin-coated substrates; biomedical devices; cell biology; cell cultivation; cell interface; cell migration; cell-adhesive; cell-chip; cell-repellent; cellular growth; cellular pattern; cellular proliferation; electrochemical bio-lithography; electrochemical method; electrochemical system integration; heparin-coated substrate; in situ cellular adhesion control; interface control; material interface; microelectrode; microfluidic device; on-demand cell immobilization; scanning microelectrode; tissue engineering; Adhesives; Biological materials; Biomedical engineering; Cells (biology); Electrodes; Glass; Microelectrodes; Microfluidics; Soft lithography; Surface treatment; Cells; Microelectrode; Patterning;
Conference_Titel :
Microtechnology in Medicine and Biology, 2005. 3rd IEEE/EMBS Special Topic Conference on
Print_ISBN :
0-7803-8711-2
DOI :
10.1109/MMB.2005.1548486