Bucsella Blanka, Fornage Antoine, Denmat Catherine Le, Kálmán Franka
HES-SO Valais, University of Applied Sciences, Sion, Wallis, Institute of Life Technologies, Route du Rawyl 47, CH-1950 Sion 2, Switzerland.
Chimia (Aarau). 2016 Oct;70(10):732-735. doi: 10.2533/chimia.2016.732.
In biotechnological processes the intracellular level of nucleotides and nucleotide sugars have a direct impact on the post-translational modification (glycosylation) of the therapeutic protein products and on the exopolysaccharide pattern of the cells. Thus, they are precursors and also key components in the production of glycoproteins and glycolipids. All four nucleotides (at different phosphorylation stages) and their natural sugar derivatives coexist in biological samples. Their relative ratios depend on the actual conditions under which the cells are grown. Therefore, their simultaneous determination at different time points and different cell culture conditions in biotechnological samples is of interest in order to develop the optimal cell culture process. In our study capillary electrophoresis (CE) combined with UV detection @ 260 nm was selected for the separation and quantification of the complex nucleotide mixture of the structurally very similar nucleotides and nucleotide sugars in cell extracts. The high separation efficiency of CE as well as its insensitivity to the complex cell matrix makes this method superior to commonly used HPLC methods. In our study eleven nucleotides and six nucleotide sugars were analyzed. A robust and reproducible analysis system was developed. As background electrolyte borate (40 mM, pH 9.5) was used containing 1% PEG (MW 35'000 Da) which enhanced resolution. In order to obtain high reproducibility in terms of migration time, mandatory for the unambiguous identification of the single compounds in the complex cell extract mixtures, dynamic coating was also employed. The method was tested for CHO cell extracts where three sugar nucleotides and seven nucleotides were identified and quantified using GDP-Glc as internal standard.
在生物技术过程中,核苷酸和核苷酸糖的细胞内水平对治疗性蛋白质产品的翻译后修饰(糖基化)以及细胞的胞外多糖模式有直接影响。因此,它们是糖蛋白和糖脂生产中的前体,也是关键成分。所有四种核苷酸(处于不同的磷酸化阶段)及其天然糖衍生物共存于生物样品中。它们的相对比例取决于细胞生长的实际条件。因此,为了开发最佳的细胞培养工艺,在生物技术样品的不同时间点和不同细胞培养条件下同时测定它们很有意义。在我们的研究中,选择了毛细管电泳(CE)结合260 nm紫外检测来分离和定量细胞提取物中结构非常相似的核苷酸和核苷酸糖的复杂核苷酸混合物。CE的高分离效率及其对复杂细胞基质的不敏感性使该方法优于常用的HPLC方法。在我们的研究中,分析了11种核苷酸和6种核苷酸糖。开发了一种稳健且可重复的分析系统。使用含有1%聚乙二醇(分子量35000 Da)的硼酸盐(40 mM,pH 9.5)作为背景电解质,这提高了分辨率。为了在迁移时间方面获得高重现性(这对于在复杂细胞提取物混合物中明确鉴定单个化合物至关重要),还采用了动态涂层。该方法针对CHO细胞提取物进行了测试,使用GDP-Glc作为内标鉴定并定量了三种糖核苷酸和七种核苷酸。