Mangin C M, Goodall D M, Roberts M A
Department of Chemistry, University of York, Heslington, UK.
Electrophoresis. 2001 May;22(8):1460-7. doi: 10.1002/1522-2683(200105)22:8<1460::AID-ELPS1460>3.0.CO;2-0.
The present study reports a novel method for the separation of the high-molecular-weight anionic polysaccharides, iota, kappa, and lambda carrageenans, in capillary electrophoresis (CE). Carrageenan samples are first derivatised with 9-aminopyrene-1,4,6-trisulfonic acid (APTS), separated in an ammonium acetate background electrolyte (BGE) and detected with laser-induced fluorescence (LIF). The effects of changes of instrumental parameters (temperature, injection mode, field strength) and the composition of the BGE (concentration and pH) are reported, and are explained in terms of the physical chemistry of the BGE and the biopolymers. Optimal separation conditions for kappa, iota, and lambda carrageenans, including an APTS internal standard, were found in a polyvinyl alcohol coated capillary with an ammonium acetate BGE of low concentration (25 mM) and moderate pH (8.0). This BGE gave the best reproducibility in tests on iota/kappa mixtures, with relative standard deviations (RSDs) in migration times and normalised peak areas (relative to the APTS internal standard) of less than 0.1% and 1%, respectively. Using this BGE at 50 degrees C and a voltage of 30 kV, all three carrageenan subtypes were separated in a run time of 3 min.
本研究报告了一种在毛细管电泳(CE)中分离高分子量阴离子多糖——ι-、κ-和λ-角叉菜胶的新方法。角叉菜胶样品首先用9-氨基芘-1,4,6-三磺酸(APTS)进行衍生化,在醋酸铵背景电解质(BGE)中进行分离,并用激光诱导荧光(LIF)进行检测。报告了仪器参数(温度、进样模式、场强)变化以及BGE组成(浓度和pH值)的影响,并根据BGE和生物聚合物的物理化学性质进行了解释。在涂有聚乙烯醇的毛细管中,使用低浓度(25 mM)和中等pH值(8.0)的醋酸铵BGE,找到了κ-、ι-和λ-角叉菜胶的最佳分离条件,包括一种APTS内标。在对ι-/κ-混合物的测试中,这种BGE具有最佳的重现性,迁移时间和归一化峰面积(相对于APTS内标)的相对标准偏差(RSD)分别小于0.1%和1%。在50℃和30 kV的电压下使用这种BGE,所有三种角叉菜胶亚型在3分钟的运行时间内即可分离。