Jiangsu Collaborative Innovation Center of Biomedical Functional Materials, Jiangsu Key Laboratory of Biomedical Materials, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing, P. R. China.
Department of Chemistry, University of British Columbia, Vancouver, BC, Canada.
Electrophoresis. 2019 Sep;40(18-19):2285-2293. doi: 10.1002/elps.201900042. Epub 2019 Apr 17.
Dynamic pH junction is an online focusing method in CE based on the electrophoretic mobility difference of analytes in the sample matrix and the background electrolyte. An advantage of this method over the conventional CE is that the sensitivity can be significantly improved. By injecting a long sample plug in the capillary and focusing the analytes at the pH boundary between the background electrolyte and sample matrix, the LOD can be improved by 10-100 folds. The dynamic pH junction method can be easily coupled with ESI-MS. In this work, we used this method for the analysis of microcystins (MCs). The detection limits and dynamic ranges were studied. The separation was optimized by adjusting the injection time, and concentrations and pH values of the background electrolyte. The optimization of analyte focusing leads to enhanced detection response compared to conventional injections, achieving 200-400 fold higher averaged peak heights for four microcystin (MC) variants. More importantly, this method was successfully used for the quantitative analysis of microcystins (MCs) in crude algae samples from natural water bodies, making it promising for practical applications.
动态 pH 结是一种基于样品基质和背景电解质中分析物电泳迁移率差异的 CE 在线聚焦方法。与传统 CE 相比,该方法的优势在于可以显著提高灵敏度。通过在毛细管中注入长的样品塞,并在背景电解质和样品基质之间的 pH 边界处聚焦分析物,可以将 LOD 提高 10-100 倍。动态 pH 结方法可以很容易地与 ESI-MS 耦合。在这项工作中,我们使用该方法分析微囊藻毒素(MCs)。研究了检测限和动态范围。通过调整进样时间、背景电解质的浓度和 pH 值来优化分离。与常规进样相比,优化分析物聚焦可提高检测响应,四种微囊藻毒素(MC)变体的平均峰高提高了 200-400 倍。更重要的是,该方法成功地用于天然水体中藻类样品中微囊藻毒素(MCs)的定量分析,为实际应用提供了广阔的前景。