Title :
Oriented and Vectorial Patterning of Cardiac Myocytes Using a Microfluidic Dielectrophoresis Chip—Towards Engineered Cardiac Tissue With Controlled Macroscopic Anisotropy
Author :
Yang, Mo ; Lim, Chee Chew ; Liao, Ronglih ; Zhang, Xin
Author_Institution :
Dept. of Health Technol. & Informatics, Hong Kong Polytech. Univ., Kowloon
Abstract :
Recently, the ability to create engineered heart tissues with a preferential cell orientation has gained much interest. Here, we present a novel method to construct a cardiac myocyte tissue-like structure using a combination of dielectrophoresis and electro-orientation via a microfluidic chip. The device includes a top home-made silicone chamber containing microfluidic channels and bottom integrated microelectrodes which are patterned on a glass slide to generate dielectrophoresis force and orientation torque. Using the interdigitated-castellated microelectrodes, the induction of a mutually attractive dielectrophoretic force between cardiac myocytes can lead to cells moving close to each other and forming a tissue-like structure with orientation along the alternating current (ac) electric field between the microelectrode gaps. Both experiments and analysis indicate that a large orientation torque and force can be achieved by choosing an optimal frequency around 2 MHz and decreasing the conductivity of medium to a relatively low level. Finally, electromechanical experiments and biopolar impedance measurements were performed to demonstrate the structural and functional anisotropy of electro-oriented structure
Keywords :
biological tissues; cardiology; cellular biophysics; electric impedance measurement; electrophoresis; microelectrodes; microfluidics; alternating current electric field; biopolar impedance measurements; cardiac myocyte tissue; cardiac tissue; electro-oriented structure; heart tissues; interdigitated-castellated microelectrodes; macroscopic anisotropy; microfluidic channels; microfluidic chip; microfluidic dielectrophoresis chip; vectorial patterning; Anisotropic magnetoresistance; Cardiac tissue; Dielectrophoresis; Electric fields; Glass; Heart; Induction generators; Microelectrodes; Microfluidics; Torque; Anisotropy; cardiac myocytes; dielectrophoresis (DEP); electro-orientation;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2006.883530