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Sample Concentration of Charged Small Molecules and Peptides in Capillary Electrophoresis by Micelle to Cyclodextrin Stacking

机译:胶束胶束电泳中的带电小分子和肽的样品浓度,并通过胶束堆叠

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摘要

A stacking approach in capillary electrophoresis based on the reversal of the analytes' effective electrophoretic velocities at a dynamic stacking boundary formed between charged micelles (i.e., from long chain ionic surfactants) and neutral cyclodextrins (i.e., native alpha-, beta-, or gamma-cyclodextrin) is presented. The approach was demonstrated by the long injection of samples in a micellar solution followed by injection of a cyclodextrin solution zone, and then separation by co-electro-osmotic flow capillary zone electrophoresis. The reversal is caused by the formation of stable cyclodextrin-surfactant complexes at the boundary that significantly decreased the retention factor of the analytes in the presence of a micellar pseudostationary phase. The dynamic boundary was formed at the cyclodextrin zone as the micelles penetrated this zone. Under optimum conditions, the boundary disappears, and the stacking ends when all the micelles have electrophoretically migrated to the boundary. Cationic and anionic small molecules were enriched using oppositely charged micelles from sodium dodecyl sulfate and cetyltrimethylammonium bromide, respectively. There were 1-2 orders of concentration magnitude improvement in analyte detection, which is expected in stacking with hydrodynamic injection. The improvements in the peak signals (height/corrected area) were up to 236/445 and 101/76 for the cationic and anionic analytes tested, respectively. Linearity (r(2)) and repeatability (%RSD of migration time, peak height, and corrected peak area) under the chosen stacking conditions (cations/anions) were = 0.998/= 0.995 and = 3.8%/= 5.7%, respectively. The stacking approach was also implemented in the direct analysis of peptides from trypsin digested bovine serum albumin.
机译:基于在带电胶束(即,来自长链离子表面活性剂)和中性环糊精(即天然α,β-或γ之间的动态堆叠边界处的分析物有效电泳速度的卷曲电泳的堆积方法呈现--Cyclodextrin)。通过在胶束溶液中的长时间注射样品,然后注射环糊精溶液区,然后通过共电渗透流量毛细管区电泳分离,证明该方法。逆转是由在边界处形成稳定的环糊精 - 表面活性剂复合物引起的,这在胶束假期阶段存在下显着降低了分析物的保留因子。当胶束穿透该区域时,在环糊精区形成动态边界。在最佳条件下,边界消失,当所有胶束都电泳迁移到边界时,堆叠结束。使用来自十二烷基硫酸钠和甲烷基三甲基铵溴化钠的相反带电胶束富集阳离子和阴离子小分子。分析物检测中有1-2个浓度幅度改善,预计在堆叠流体动力学时预期。峰值信号(高度/校正区域)的改进分别用于测试的阳离子和阴离子分析物的236/445和101/76。选择的堆叠条件(阳离子/阴离子)下的线性(R(2))和重复性(迁移时间,峰值高度和校正峰面积%,峰值高度和校正峰面积)& = 0.998 /& = 0.995和& = 3.8% /& = 5.7%。还在胰蛋白酶消化牛血清白蛋白的肽的直接分析中实施了堆叠方法。

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  • 来源
    《Analytical chemistry》 |2017年第24期|共7页
  • 作者单位

    Univ Tasmania Sch Phys Sci Chem Australian Ctr Res Separat Sci ACROSS Hobart Tas 7001 Australia;

    Univ Tasmania Sch Phys Sci Chem Australian Ctr Res Separat Sci ACROSS Hobart Tas 7001 Australia;

    Med Univ Gdansk Dept Biopharmaceut &

    Pharmacodynam Gdansk Poland;

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  • 正文语种 eng
  • 中图分类 分析化学;
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