首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Highly sensitive oligosaccharide analysis in capillary electrophoresis using large-volume sample stacking with an electroosmotic flow pump
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Highly sensitive oligosaccharide analysis in capillary electrophoresis using large-volume sample stacking with an electroosmotic flow pump

机译:毛细管电泳中的高灵敏度寡糖分析,使用电渗流泵进行大体积样品堆叠

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摘要

To obtain high sensitivity in capillary electrophoresis of oligosaccharide without reducing the high resolution with an easy experimental procedure, large-volume sample stacking with an electroosmotic flow pump (LVSEP) was investigated. As a fundamental study, effect of the conductivity of a sample solution in LVSEP was examined. It was revealed that LVSEP was successfully carried out even in using a sample solution with the ionic strength of 150μM and the conductivity ratio of 20, indicating a good applicability of LVSEP to the analysis of real samples containing salts. When glucose oligomer was analyzed as a model sample in LVSEP-capillary zone electrophoresis (CZE), all peaks were well resolved with decreasing only 5% of the peak-to-peak distance, which suggested 95% of the whole capillary could be used for the effective separation. In the analysis of maltoheptaose, a good calibration line with correlation coefficient of 0.9995 was obtained. The limit of detection was estimated as 2pM, which was 500-fold lower than that in the conventional CZE. N-linked glycans released from three glycoproteins, bovine ribonuclease B, bovine fetuin, and human α _1-acid glycoprotein were also analyzed by LVSEP-CZE. By the sample purification with a gel filtration column, further sample dilution to reduce the sample conductivity for LVSEP was not needed. All glycan samples were well concentrated and separated with up to a 770-fold sensitivity increase. The run-to-run repeatabilities of the migration time, peak height, and peak area were good with relative standard deviations of 0.1-1.3%, 1.2-1.7%, and 2.8-4.9%, respectively.
机译:为了在寡糖的毛细管电泳中获得高灵敏度而又不通过简单的实验步骤降低高分辨率,我们研究了使用电渗流泵(LVSEP)进行大体积样品堆叠的方法。作为基础研究,研究了样品溶液在LVSEP中的电导率的影响。结果表明,即使使用离子强度为150μM,电导率为20的样品溶液,也能成功进行LVSEP,这表明LVSEP在分析含盐的实际样品中具有良好的适用性。在LVSEP-毛细管区带电泳(CZE)中将葡萄糖低聚物作为模型样品进行分析时,所有峰均得到很好的分离,而峰-峰距离仅减少了5%,这表明95%的毛细管可用于有效分离。在麦芽七糖的分析中,获得了良好的校正线,相关系数为0.9995。检测限估计为2pM,比常规CZE的检测限低500倍。还通过LVSEP-CZE分析了从三种糖蛋白,牛核糖核酸酶B,牛胎蛋白和人α_1-酸糖蛋白释放的N-连接的聚糖。通过使用凝胶过滤柱纯化样品,不需要进一步稀释样品以降低LVSEP的样品电导率。所有聚糖样品均进行了充分浓缩和分离,灵敏度提高了770倍。迁移时间,峰高和峰面积的运行重复性良好,相对标准偏差分别为0.1-1.3%,1.2-1.7%和2.8-4.9%。

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