Fraaije J G, Murris R M, Norde W, Lyklema J
Department of Physical and Colloid Chemistry, Agricultural University, Dreijenplein 6, 6703 HB Wageningen Netherlands.
Biophys Chem. 1991 Jul;40(3):303-15. doi: 10.1016/0301-4622(91)80028-p.
In this paper we discuss the thermodynamics of ion binding in solution, protein adsorption and ion co-adsorption. The emphasis is on charge regulation effects. To this end, we introduce phenomenological linkage relations from which the ion binding can be calculated from the electrolyte dependency of proton titration curves and the co-adsorption from the electrolyte dependency of protein adsorption isotherms. The linkage relations are derived from classical interfacial thermodynamics, and thus offer an alternative approach as compared to the mass balance equations which are currently used in biotechnology, and Record et al.'s 1978 analysis of Wyman's Binding Polynomial for protein interactions. The co-adsorption theory is an extension of our previous analysis of ion binding in solution, which we include here for comparison of the ion co-adsorption with the ion binding in solution. The theory is applied to the chromatography of lysozyme on the strong cation exchanger 'mono S' and to the proton titration of lysozyme in solution. In the accompanying Part 2 of this paper the results are interpreted with a simple model.
在本文中,我们讨论了溶液中离子结合、蛋白质吸附和离子共吸附的热力学。重点是电荷调节效应。为此,我们引入了唯象的关联关系,据此可从质子滴定曲线的电解质依赖性计算离子结合,并从蛋白质吸附等温线的电解质依赖性计算共吸附。这些关联关系源自经典界面热力学,因此与生物技术中目前使用的质量平衡方程以及Record等人1978年对Wyman蛋白质相互作用结合多项式的分析相比,提供了一种替代方法。共吸附理论是我们先前对溶液中离子结合分析的扩展,我们在此将其纳入以比较离子共吸附与溶液中的离子结合。该理论应用于溶菌酶在强阳离子交换剂“Mono S”上的色谱分析以及溶液中溶菌酶的质子滴定。在本文附带的第2部分中,用一个简单模型对结果进行了解释。