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High-Throughput CGE-LIF Based Analysis of APTS-labeled N-Glycans, Utilizing a Multiplex Capillary DNA Sequencer

机译:基于高通量CGE-LIF的apTs标记的N-聚糖分析,利用多重毛细管DNa测序仪

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摘要

The analysis of protein glycosylation became of increasing importance in research, as well as for monitoring production processes of biotechnologically produced pharmaceuticals, in the recent past. Applications in both fields require high-throughput (HTP) and high-resolution (HR) analytical methods that allow fast and robust profiling of protein glycosylation on large sample sets. To characterize these complex posttranslational modifications of proteins several analysis methods were developed in the last three decades. Besides several mass spectrometry and liquid chromatography based analysis techniques, electromigrative separation techniques became apparent during the recent past. Especially capillary gel-electrophoresis with laser-induced-fluorescence-detection (CGE-LIF), using standard DNA sequencing equipment, has been developed for HTP glycoprofiling of APTS-labeled glycans [1]. The application of this technique with up to 96 capillaries in parallel, results in massive reduction of the effective separation time per sample combined with an impressive sensitivity due to LIF detection. Here we present an optimized sample preparation procedure for N-glycan-profiling by CGE-LIF, enabling the HTP glycosylation analysis of e.g. human plasma N-glycome [2]. After enzymatic glycan-release, N-glycan labeling with APTS was performed, using 2-picoline borane as a non-toxic reducing agent. Reaction conditions were optimized for a high labeling efficiency, short handling times and only limited loss of sialic acids. A polyacrylamide based stationary phase was used in hydrophilic-interaction-chromatography (HILIC) mode to purify APTS labeled glycans. The whole sample preparation procedure can be performed at the 96-well-plate level with a hands-on time of less than 2.5 h. Purified APTS-labeled N-glycans were analyzed using a standard capillary DNA sequencer. The optimized sample preparation, combined with robust, HR, high-sensitive multiplexed CGE-LIF based measurement and fully automated data evaluation, enables highly reproducible “real” HTP analysis of protein N-glycosylation. 1. Schwarzer J, Rapp E, Reichl U, Electrophoresis, 2008, 29, 4203-4214. 2. Ruhaak LR, Hennig R, Huhn C, Borowiak M, Dolhain RJEM, Deelder AM, Rapp E, Wuhrer M, Journal of Proteome Research, 2010, 9,6655-6664.
机译:近年来,蛋白质糖基化的分析在研究以及监测生物技术生产的药物的生产过程中变得越来越重要。在这两个领域中的应用都需要高通量(HTP)和高分辨率(HR)分析方法,这些方法可以对大量样品进行快速,可靠的蛋白质糖基化分析。为了表征这些复杂的蛋白质翻译后修饰,在最近的三十年中开发了几种分析方法。除了几种基于质谱和液相色谱的分析技术外,电迁移分离技术在最近的一段时间内也变得显而易见。尤其是使用标准DNA测序设备开发了带有激光诱导荧光检测(CGE-LIF)的毛细管凝胶电泳技术,用于APTS标记的聚糖的HTP糖谱分析[1]。这项技术与多达96个毛细管并行应用,大大降低了每个样品的有效分离时间,并且由于LIF检测而带来了令人印象深刻的灵敏度。在这里,我们介绍了一种通过CGE-LIF对N-聚糖进行谱分析的优化样品制备程序,从而可以对例如人血浆中的N-糖组[2]。酶促聚糖释放后,使用2-甲基吡啶硼烷作为无毒还原剂,用APTS进行N-聚糖标记。优化了反应条件,以实现较高的标记效率,较短的处理时间和唾液酸的有限损失。基于聚丙烯酰胺的固定相用于亲水相互作用色谱(HILIC)模式,以纯化APTS标记的聚糖。整个样品制备过程可在96孔板水平上进行,动手时间少于2.5小时。使用标准毛细管DNA测序仪分析纯化的APTS标记的N-聚糖。经过优化的样品前处理,结合强大的,HR,高灵敏度,基于CGE-LIF的多重测量和全自动数据评估,可对蛋白质N-糖基化进行高度可重复的“真实” HTP分析。 1. Schwarzer J,Rapp E,Reichl U,电泳,2008,29,4203-4214。 2. Ruhaak LR,Hennig R,Huhn C,Borowiak M,Dolhain RJEM,Deelder AM,Rapp E,Wuhrer M,《蛋白质组学研究》,2010年,9,6655-6664。

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