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调节直流流动电泳中的蛋白质。

Tuning direct current streaming dielectrophoresis of proteins.

机构信息

Department of Chemistry and Biochemistry, Arizona State University, Tempe, Arizona 85287, USA.

出版信息

Biomicrofluidics. 2012 Aug 2;6(3):34108. doi: 10.1063/1.4742695. Print 2012 Sep.

Abstract

Dielectrophoresis (DEP) of biomolecules has large potential to serve as a novel selectivity parameter for bioanalytical methods such as (pre)concentration, fractionation, and separation. However, in contrast to well-characterized biological cells and (nano)particles, the mechanism of protein DEP is poorly understood, limiting bioanalytical applications for proteins. Here, we demonstrate a detailed investigation of factors influencing DEP of diagnostically relevant immunoglobulin G (IgG) molecules using insulator-based DEP (iDEP) under DC conditions. We found that the pH range in which concentration of IgG due to streaming iDEP occurs without aggregate formation matches the pH range suitable for immunoreactions. Numerical simulations of the electrokinetic factors pertaining to DEP streaming in this range further suggested that the protein charge and electroosmotic flow significantly influence iDEP streaming. These predictions are in accordance with the experimentally observed pH-dependent iDEP streaming profiles as well as the determined IgG molecular properties. Moreover, we observed a transition in the streaming behavior caused by a change from positive to negative DEP induced through micelle formation for the first time experimentally, which is in excellent qualitative agreement with numerical simulations. Our study thus relates molecular immunoglobulin properties to observed iDEP, which will be useful for the future development of protein (pre)concentration or separation methods based on DEP.

摘要

介电泳(DEP)在生物分子中具有很大的潜力,可以作为生物分析方法(如预浓缩、分级和分离)的新型选择性参数。然而,与经过充分研究的生物细胞和(纳米)颗粒相比,蛋白质的 DEP 机制还了解甚少,限制了蛋白质的生物分析应用。在这里,我们使用基于绝缘体的 DEP(iDEP)在直流条件下,详细研究了影响诊断相关免疫球蛋白 G(IgG)分子 DEP 的因素。我们发现,由于流体力引起的 IgG 浓度增加而不发生聚集的 pH 范围与适合免疫反应的 pH 范围相匹配。该范围内与 DEP 流体力相关的电动因素的数值模拟进一步表明,蛋白质电荷和电渗流对 iDEP 流体力有显著影响。这些预测与实验观察到的 pH 依赖性 iDEP 流体力曲线以及确定的 IgG 分子特性一致。此外,我们首次实验观察到由胶束形成引起的从正 DEP 到负 DEP 的流体力转变,这与数值模拟非常吻合。因此,我们的研究将免疫球蛋白的分子特性与观察到的 iDEP 联系起来,这将有助于未来基于 DEP 的蛋白质(预)浓缩或分离方法的发展。

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