Title :
Monitoring voltage-sensitive membrane impedance change using radio frequency interrogation
Author :
Dharia, Sameera ; Rabbitt, Richard D.
Author_Institution :
Dept. of Bioeng., Univ. of Utah, Salt Lake City, UT, USA
fDate :
Aug. 31 2010-Sept. 4 2010
Abstract :
Here we present a new technique to monitor dynamic conformational changes in voltage-sensitive membrane-bound proteins using radio frequency (RF) impedance measurements. Xenopus oocytes were transfected to express ShakerB-IR K+ ion channels, and step changes in membrane potential were applied using two-electrode voltage clamp (TEVC). Simultaneously, bipolar extracellular electrodes were used to measure the RF electrical impedance across the cell (300 kHz - 1 MHz). RF current will either pass through the media, around the cell, or displace charge across the cell membrane. The change in displacement current in the cell membrane during voltage clamp resulted in measurable RF impedance change. RF impedance change during DC membrane depolarization was significantly greater in ShakerB-IR expressing oocytes than in endogenous controls at 300 kHz, 500 kHz and, to a lesser extent, 1 MHz. Since the RF were too high to modulate ShakerB-IR protein conformational state (e.g. open channel probability), impedance changes are interpreted as reflections of voltage-dependent protein conformation and associated biophysics such as ion-channel dipole interactions, fluctuations in bound water, or charged lipid head-group rotations.
Keywords :
bioelectric potentials; biological techniques; biomembrane transport; electric impedance; electrodes; lipid bilayers; molecular biophysics; molecular configurations; potassium; proteins; DC membrane depolarization; K; RF electrical impedance; ShakerB-IR K+ ion channels; Xenopus oocytes; bipolar extracellular electrodes; bound water fluctuations; charged lipid head group rotations; dynamic conformational changes; ion channel dipole interactions; membrane potential; membrane-bound proteins; radiofrequency interrogation; two-electrode voltage clamp; voltage-sensitive membrane impedance change monitoring; Biomembranes; Current measurement; Electrodes; Impedance; Proteins; Radio frequency; Voltage measurement; Animals; Cell Line; Cell Membrane; Conductometry; Electric Impedance; Membrane Potentials; Oocytes; Radio Waves; Shaker Superfamily of Potassium Channels; Xenopus laevis;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2010 Annual International Conference of the IEEE
Conference_Location :
Buenos Aires
Print_ISBN :
978-1-4244-4123-5
DOI :
10.1109/IEMBS.2010.5627860