Title :
Electrode microchamber for noninvasive perturbation of mammalian cells with nanosecond pulsed electric fields
Author :
Sun, Yinghua ; Vernier, P. Thomas ; Behrend, Matthew ; Marcu, Laura ; Gundersen, Martin A.
Author_Institution :
Mater. Sci. Dept., Univ. of Southern California, Los Angeles, CA, USA
Abstract :
Nanosecond pulsed electric fields can pass through the external membrane of biological cells and disturb fast-responding intracellular structures and processes. To enable real-time imaging and investigation of these phenomena, a microchamber with integral electrodes and optical path for observing individual cells exposed to ultrashort electric pulses was designed and fabricated utilizing photolithographic and microelectronic methods. SU-8 photoresist was patterned to form straight sidewalls from 10 to 30 μm in height, with gold film deposited on the top and sidewalls for conductive, nonreactive electrodes and a uniform electric field. Channel dimensions (10-30 μm×100 μm×12000 μm) are suitable for observations of mammalian cells during nanosecond, megavolt-per-meter pulsed electric field exposure. Experimental studies utilizing the electrode microchamber include live-cell imaging of nanoelectropulse-induced intracellular calcium bursts and membrane phospholipid translocation.
Keywords :
bioelectric potentials; biological techniques; biomembranes; cellular biophysics; electrodes; nanotechnology; perturbation techniques; photoresists; 10 to 30 mum; 100 mum; 12000 mum; electrode microchamber; external membrane; integral electrodes; mammalian cells; microchamber; nanosecond pulsed electric fields; noninvasive perturbation; Biological cells; Biomedical optical imaging; Biomembranes; Electrodes; Microelectronics; Nanobioscience; Optical design; Optical films; Optical imaging; Optical pulses; Electrode chamber; SU-8 photoresist; electroperturbation; electroporation; responses of malignant cells to nanosecond electrical pulses; Calcium; Cell Culture Techniques; Cell Membrane; Electric Stimulation; Electromagnetic Fields; Equipment Design; Equipment Failure Analysis; Flow Cytometry; Humans; Jurkat Cells; Microelectrodes; Microfluidic Analytical Techniques; Microscopy, Fluorescence; Nanotechnology;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2005.859544