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Simulation of translational dielectrophoretic velocity spectra of erythrocytes in traveling electric field using various volume models

机译:使用各种体积模型模拟行进电场中红细胞的平移介电泳速度谱

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摘要

Proper models of cell geometry are needed for biophysical analysis of cellular electrical phenomena. This work compares various mathematical volume-models for normal human erythrocytes (discocyte) possessing biconcave-discoid form to simulate translational dielectrophoretic velocity spectra of erythrocyte suspensions induced in a traveling electric field over a frequency range from 1 kHz to 15 MHz. The non-spherical volumes of the oblate-spheroid, the prolate-spheroid, and the oval of Cassini and the "Bun-model" were numerically evaluated according to the normal range of cellular dimension values for mammalian erythrocytes. The latter model is the novel approach derived to provide a more realistic model for the shape of discocytes in the thin biconcave-disc form with a toroidal rim. The bun model is also more rugged than the Cassini equation. Using the actual cell dimensions for calculations, the numerical results among these calculated cell volumes revealed large and significant differences with respect to the Bun-model of +32.09%, +8.95%, and -8.45% for prolate-spheroid, Cassini's equation, and oblate-spheroid, respectively. These large volume deviations shift the magnitude of the sharp peak in dielectrophoretic velocity spectra to lower values with differences of +189.28%, +7.66%, and -9.49%, respectively. For traveling wave dielectrophoresis, similar results were found for the sharp peak of +145.76%, +7.71%, and -9.50%, respectively. The suitability of the Bun-model was verified by curve-fitting of the cell velocity spectra between experimental and theoretical curves, which gave the maximum discrepancies of less than ±10%.
机译:细胞电现象的生物物理分析需要正确的细胞几何模型。这项工作比较了具有双凹-胶体形式的正常人红细胞(盘状细胞)的各种数学体积模型,以模拟在1 kHz至15 MHz频率范围内的行进电场中诱导的红细胞悬液的平移介电泳速度谱。根据哺乳动物红细胞的细胞尺寸值的正常范围,对卡西尼号的扁球形,扁球形和椭圆形的非球形体积和“ Bun模型”进行了数值评估。后一种模型是一种新颖的方法,旨在为具有环形边缘的薄双凹盘形式的盘状细胞的形状提供更现实的模型。包子模型也比卡西尼方程更坚固。使用实际的像元尺寸进行计算,这些计算像元体积中的数值结果表明,对于扁长椭球体,卡西尼方程和Bun模型,Bun模型分别具有+32.09%,+ 8.95%和-8.45%的巨大差异。分别为扁球形。这些较大的体积偏差将介电泳速度谱中尖峰的幅度移至较低的值,其差异分别为+189.28%,+ 7.66%和-9.49%。对于行波介电电泳,尖峰分别为+145.76%,+ 7.71%和-9.50%,发现了相似的结果。 Bun模型的适用性通过实验和理论曲线之间的细胞速度谱曲线拟合来验证,其最大差异小于±10%。

著录项

  • 来源
    《Journal of Applied Physics 》 |2013年第1期| 014701.1-014701.10| 共10页
  • 作者单位

    Biotechnology of Electromechanics Research Unit, Science of Physics, Faculty of Technology and Environment, Prince of Songkla University, Kathu, Phuket 83120, Thailand;

    Biotechnology of Electromechanics Research Unit, Science of Physics, Faculty of Technology and Environment, Prince of Songkla University, Kathu, Phuket 83120, Thailand;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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