State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry & Chemical Engineering and Center of Materials Analysis, Nanjing University, Nanjing 210023, China.
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry & Chemical Engineering and Center of Materials Analysis, Nanjing University, Nanjing 210023, China.
J Pharm Biomed Anal. 2019 Oct 25;175:112761. doi: 10.1016/j.jpba.2019.07.009. Epub 2019 Jul 8.
A porous zwitterionic monolithic column was prepared to rapidly and efficiently separate lysozyme from egg white. The monolith was synthesized in a stainless steel HPLC column (5 cm × 4.6 mm i.d.) by in-situ thermal initiated co-polymerization of N,N-dimethyl-N-methacryloxyethyl-N-(3-sulfopropyl) ammonium betaine (MSA) and ethylene dimethacrylate (EDMA). Due to the combination of quaternary ammonium and sulfonic groups on the monolithic matrix in one-pot process, the hydrophobic carbon chain and hydrophilic radical were obtained, which provided multiple driving forces for neutral, basic and acidic analytes, thus mix-mode chromatography mechanism contributed to the retention of different charged proteins. Properties such as composition, morphology and stability of the MSA-co-EDMA monolithic column were characterized by various analytical methods and the results showed that the monolith has large through-pores, good hydrophilicity and permeability. The effects of mobile phase pH and ionic strength on proteins were investigated, drawing the conclusion that the main adsorption and elution mechanism of lysozyme on MSA-co-EDMA monolith was electrostatic interaction, while those of other proteins included hydrophobic, hydrophilic and electrostatic interactions. Therefore, efficient separation of lysozyme and other proteins could be successfully achieved by switching the pH of mobile phase. Lysozyme can be adsorbed using 20 mmol/L phosphate buffer (pH 7.0) and eluted with 20 mmol/L phosphate buffer (pH 2.0). To prove the practicality of the monolithic column, it was also applied in the separation of lysozyme in egg white, which means the work has the potential for further development in proteome analysis of real biological samples.
一种多孔两性离子整体柱被制备出来,用于快速有效地从蛋清中分离溶菌酶。该整体柱是在不锈钢 HPLC 柱(5cm×4.6mmID)中通过原位热引发共聚 N,N-二甲基-N-甲基丙烯酰氧基乙基-N-(3-磺丙基)铵甜菜碱(MSA)和乙二醇二甲基丙烯酸酯(EDMA)合成的。由于在一锅法过程中,两性离子和磺酸基团结合在整体基质上,得到了疏水性碳链和亲水性基团,为中性、碱性和酸性分析物提供了多种驱动力,因此混合模式色谱机制有助于保留不同带电蛋白质。通过各种分析方法对 MSA-co-EDMA 整体柱的组成、形态和稳定性进行了表征,结果表明该整体柱具有大的贯通孔、良好的亲水性和渗透性。考察了流动相 pH 值和离子强度对蛋白质的影响,得出结论:溶菌酶在 MSA-co-EDMA 整体柱上的主要吸附和洗脱机制是静电相互作用,而其他蛋白质的吸附和洗脱机制包括疏水、亲水和静电相互作用。因此,通过切换流动相的 pH 值可以成功实现溶菌酶和其他蛋白质的高效分离。溶菌酶可以使用 20mmol/L 磷酸盐缓冲液(pH7.0)进行吸附,并用 20mmol/L 磷酸盐缓冲液(pH2.0)进行洗脱。为了证明整体柱的实用性,还将其应用于蛋清中溶菌酶的分离,这意味着该工作在实际生物样品蛋白质组分析中具有进一步发展的潜力。