Department of Chemistry, Graduate School of Science, Kobe University, Nada, Kobe 657-8501, Japan.
Langmuir. 2010 Jul 6;26(13):11530-7. doi: 10.1021/la100769q.
Voltammetric behaviors of various globular proteins, including cytochrome c, ribonuclease A, lysozyme, albumin, myoglobin, and alpha-lactalbumin, were studied at the polarized 1,2-dichloroethane/water (DCE/W) interface in the presence of four different anionic surfactants, that is, dinonylnaphthalenesulfonate (DNNS), bis(2-ethylhexyl)sulfosuccinate (Aerosol-OT; AOT), bis(2,2,3,3,4,4,5,5,6,6,7,7-dodecafluoroheptyl)sulfosuccinate (BDFHS), and bis(2-ethylhexyl)phosphate (BEHP). When the W phase was acidic (pH = approximately 3.4), the surfactants (except for BEHP) added to DCE facilitated the adsorption of the above proteins to the DCE/W interface and gave a well-developed voltammetric wave due to the adsorption/desorption of the proteins. This voltammetric wave, which we here call "protein wave", is promising for direct label-free electrochemical detection of proteins. The current for the adsorption of a protein to the interface showed a linear dependence on the protein concentration in the presence of excess surfactant. The foot potential at which the protein wave appeared in cyclic voltammetry showed different values depending on the natures of the protein and surfactant. Multivariate analysis for the foot potentials determined for different proteins with different surfactants revealed that the protein selectivity should depend on the charged, polar, and nonpolar surface areas of a protein molecule. On the basis of these voltammetric studies, it was shown in principle that online electrochemical separation/determination of proteins could be performed using a two-step oil/water-type flow-cell system.
在存在四种不同阴离子表面活性剂(即二壬基萘磺酸钠(DNNS)、双(2-乙基己基)磺基琥珀酸钠(Aerosol-OT;AOT)、双(2,2,3,3,4,4,5,5,6,6,7,7-十二氟庚基)磺基琥珀酸钠(BDFHS)和双(2-乙基己基)磷酸酯(BEHP)的情况下,研究了各种球状蛋白质(包括细胞色素 c、核糖核酸酶 A、溶菌酶、白蛋白、肌红蛋白和α-乳白蛋白)在偏极化的 1,2-二氯乙烷/水(DCE/W)界面的伏安行为。当 W 相呈酸性(pH 值约为 3.4)时,添加到 DCE 中的表面活性剂(除 BEHP 外)促进了上述蛋白质在 DCE/W 界面的吸附,并由于蛋白质的吸附/解吸而给出了一个很好发展的伏安波。我们将此伏安波称为“蛋白质波”,它有望用于蛋白质的直接无标记电化学检测。在存在过量表面活性剂的情况下,蛋白质吸附到界面的电流与蛋白质浓度呈线性关系。在循环伏安法中,蛋白质波出现的步电位取决于蛋白质和表面活性剂的性质而呈现不同的值。用不同的表面活性剂对不同蛋白质的步电位进行多元分析表明,蛋白质的选择性应该取决于蛋白质分子的带电、极性和非极性表面积。基于这些伏安研究,原则上表明可以使用两步油/水型流动池系统在线进行蛋白质的电化学分离/测定。