Department of Biochemical Engineering, School of Chemical Engineering and Technology and Key Laboratory of Systems Bioengineering and Frontiers Science Center for Synthetic Biology (Ministry of Education), Tianjin University, Tianjin 300350, China; Zhejiang Provincial Key Laboratory for Chemical & Biological Processing Technology of Farm Products, School of Biological and Chemical Engineering, Zhejiang University of Science &Technology, Hangzhou 310023, China.
Department of Biology & Guangdong Provincial Key Laboratory of Marine Biotechnology, College of Science, Shantou University, Shantou, Guangdong, 515063, China.
J Chromatogr A. 2020 Dec 20;1634:461669. doi: 10.1016/j.chroma.2020.461669. Epub 2020 Nov 2.
Polymer-grafted media have been a focus of recent development for ion exchange chromatography (IEC) because of their capacity and uptake kinetics that can lead to high dynamic capacity in protein purification. This work is devoted to developing novel cation exchangers of high adsorption performance by grafting polymerization of sodium methacrylate (MA) onto a commercial agarose gel Sepharose FF (FF). Five polyMA (pMA)-grafted FF gels were prepared with the same grafting density but different chain lengths (i.e., different ionic capacities, ICs), and named as FF-pMA-IC (IC denotes IC value in mmol/L). The effects of chain length (IC) and ionic strength (IS) on protein adsorption and chromatographic behaviors were examined using lysozyme (at pH 8.0) and γ-globulin (at pH 5.0) as model proteins. It was found that lysozyme adsorption capacity increased with increasing IC till reaching a plateau (390 mg/mL) over IC=540 mmol/L (FF-pMA-540), while there was an optimum IC (320 mmol/L, FF-pMA-320) at which γ-globulin adsorption capacity reached the highest (208 mg/mL). With increasing chain length (IC), the uptake rates of both the proteins presented decreasing trends due to the steric hindrance caused by the polymer chains. At the same IC, however, the uptake rate of lysozyme was much higher than that of γ-globulin because of the different sizes of the two proteins. Increasing salt concentration obviously promoted the uptake rates of the proteins, which led to the increase of dynamic binding capacities (DBCs) in different salt concentration ranges. The DBC value of lysozyme on FF-pMA-540 kept as high as 108-198 mg/mL in the salt concentration range of 0-150 mmol/L, and the DBC of γ-globulin on FF-pMA-320 increased to 27 mg/mL with increasing salt concentration from 100 mmol/L. This work clearly indicated the presence of optimal IC values (chain lengths) for different sized proteins, and IS was also crucial for reaching a high DBC for a specific protein. The findings provided insight into the selection of FF-pMA-n gels and operational conditions (e.g., IS) for the purification of a target protein of defined size.
聚合物接枝介质一直是离子交换色谱(IEC)的研究热点,因为它们的容量和吸收动力学可以在蛋白质纯化中实现高动态容量。本工作致力于通过将甲基丙烯酸钠(MA)接枝聚合到商业琼脂糖凝胶 Sepharose FF(FF)上,开发具有高吸附性能的新型阳离子交换剂。用相同的接枝密度但不同链长(即不同的离子容量 IC)制备了 5 种聚 MA(pMA)接枝 FF 凝胶,分别命名为 FF-pMA-IC(IC 表示 mmol/L 中的 IC 值)。用溶菌酶(pH8.0)和γ-球蛋白(pH5.0)作为模型蛋白,考察了链长(IC)和离子强度(IS)对蛋白质吸附和色谱行为的影响。结果表明,随着 IC 的增加,溶菌酶的吸附容量呈上升趋势,当 IC 超过 540mmol/L(FF-pMA-540)时达到平台(390mg/mL),而在 IC=320mmol/L(FF-pMA-320)时,γ-球蛋白的吸附容量达到最高(208mg/mL)。随着链长(IC)的增加,两种蛋白质的吸收速率均呈下降趋势,这是由于聚合物链引起的空间位阻所致。然而,在相同的 IC 下,溶菌酶的吸收速率远高于γ-球蛋白,因为两种蛋白质的大小不同。增加盐浓度明显促进了蛋白质的吸收速率,从而导致在不同盐浓度范围内动态结合容量(DBC)的增加。在 0-150mmol/L 的盐浓度范围内,溶菌酶在 FF-pMA-540 上的 DBC 值保持在 108-198mg/mL 之间,而当盐浓度从 100mmol/L 增加到 FF-pMA-320 时,γ-球蛋白的 DBC 值增加到 27mg/mL。本工作清楚地表明,对于不同大小的蛋白质,存在最佳的 IC 值(链长),并且 IS 对于达到特定蛋白质的高 DBC 也是至关重要的。研究结果为选择特定大小目标蛋白的 FF-pMA-n 凝胶和操作条件(例如 IS)提供了依据。