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Dielectric Spectroscopy of Single Human Erythrocytes at Physiological Ionic Strength: Dispersion of the Cytoplasm

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 1996 Jul 1
PMID 8804632
Citations 41
Authors
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Abstract

Usually dielectrophoretic and electrorotation measurements are carried out at low ionic strength to reduce electrolysis and heat production. Such problems are minimized in microelectrode chambers. In a planar ultramicroelectrode chamber fabricated by semiconductor technology, we were able to measure the dielectric properties of human red blood cells in the frequency range from 2 kHz to 200 MHz up to physiological ion concentrations. At low ionic strength, red cells exhibit a typical electrorotation spectrum with an antifield rotation peak at low frequencies and a cofield rotation peak at higher ones. With increasing medium conductivity, both electrorotational peaks shift toward higher frequencies. The cofield peak becomes antifield for conductivities higher than 0.5 S/m. Because the polarizability of the external medium at these ionic strengths becomes similar to that of the cytoplasm, properties can be measured more sensitively. The critical dielectrophoretic frequencies were also determined. From our measurements, in the wide conductivity range from 2 mS/m to 1.5 S/m we propose a single-shell erythrocyte model. This pictures the cell as an oblate spheroid with a long semiaxis of 3.3 microns and an axial ratio of 1:2. Its membrane exhibits a capacitance of 0.997 x 10(-2) F/m2 and a specific conductance of 480 S/m2. The cytoplasmic parameters, a conductivity of 0.4 S/m at a dielectric constant of 212, disperse around 15 MHz to become 0.535 S/m and 50, respectively. We attribute this cytoplasmic dispersion to hemoglobin and cytoplasmic ion properties. In electrorotation measurements at about 60 MHz, an unexpectedly low rotation speed was observed. Around 180 MHz, the speed increased dramatically. By analysis of the electric chamber circuit properties, we were able to show that these effects are not due to cell polarization but are instead caused by a dramatic increase in the chamber field strength around 180 MHz. Although the chamber exhibits a resonance around 180 MHz, the harmonic content of the square-topped driving signals generates distortions of electrorotational spectra at far lower frequencies. Possible technological applications of chamber resonances are mentioned.

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References
1.
ORTTUNG W . Anisotropy of proton fluctuations in proteins. Calculations for simple models. J Phys Chem. 1968; 72(12):4066-71. DOI: 10.1021/j100858a021. View

2.
Becker F, Wang X, Huang Y, Pethig R, Vykoukal J, Gascoyne P . Separation of human breast cancer cells from blood by differential dielectric affinity. Proc Natl Acad Sci U S A. 1995; 92(3):860-4. PMC: 42720. DOI: 10.1073/pnas.92.3.860. View

3.
Paul R, Otwinowski M . The theory of the frequency response of ellipsoidal biological cells in rotating electrical fields. J Theor Biol. 1991; 148(4):495-519. DOI: 10.1016/s0022-5193(05)80233-4. View

4.
ORTTUNG W . Anisotropy of proton fluctuations and the Kerr effect of protein solutions. Theoretical considerations. J Phys Chem. 1968; 72(12):4058-66. DOI: 10.1021/j100858a020. View

5.
Pethig R, Kell D . The passive electrical properties of biological systems: their significance in physiology, biophysics and biotechnology. Phys Med Biol. 1987; 32(8):933-70. DOI: 10.1088/0031-9155/32/8/001. View