Title :
Mechano-active tissue scaffold system based on a magnetic nanoparticle embedded nanofibrous membrane
Author :
Sheng-Po Fang ; Hulan Shang ; Pit Fee Jao ; Kyoung-Tae Kim ; Kim, Gloria J. ; Yoon, Jung Hae ; Kun Cho ; Katz, Adam J. ; Yoon, Yong-Kyu Yk
Author_Institution :
Univ. of Florida, Gainesville, FL, USA
Abstract :
A mechano-active nanofibrous scaffold system for in vitro active cell culture is fabricated and demonstrated using electrospun nanofibers with magnetic nanoparticles embedded, and an electromagnet. The electrospun nanofiber consists of polycaprolactone and iron oxide nanoparticles. The magnetic nanofibrous membrane is held by micromachined printing circuit board (PCB) O-rings and remotely actuated by an electromagnet, which generates alternating current (AC) magnetic fields. The scaffold provides mechanical stress and strain on culturing cells in response to external AC magnetic fields. The mechanical properties of the magnetic nanoporous membrane including the density, porosity, and effective Young´s modulus are characterized. Cell viabilities on the nanofibrous membrane with and without magnetic nanoparticles embedded have been tested.
Keywords :
Young´s modulus; biomedical materials; biomembranes; cellular biophysics; electromagnetic actuators; electrospinning; iron compounds; magnetic particles; nanofabrication; nanofibres; nanomedicine; nanoparticles; nanoporous materials; polymers; porosity; stress-strain relations; tissue engineering; Fe2O3; PCB; alternating current magnetic fields; cell viabilities; culturing cells; effective Young´s modulus; electromagnet; electrospun nanofiber; external AC magnetic fields; in vitro active cell culture; iron oxide nanoparticles; magnetic nanofibrous membrane; magnetic nanoparticle; magnetic nanoporous membrane; mechanical properties; mechanical strain; mechanical stress; mechano-active nanofibrous scaffold system; membrane density; micromachined printing circuit board O-rings; polycaprolactone; porosity; Biomembranes; Computer architecture; Magnetic flux; Magnetic hysteresis; Magnetic resonance imaging; Microprocessors; Nanobioscience;
Conference_Titel :
Micro Electro Mechanical Systems (MEMS), 2014 IEEE 27th International Conference on
Conference_Location :
San Francisco, CA
DOI :
10.1109/MEMSYS.2014.6765791