首页> 外文期刊>Analytical chemistry >Microcalorimetric studies on the interaction mechanism between proteinsand hydrophobic solid surfaces in hydrophobic interaction chromatography:Effects of salts, hydrophobicity of the sorbent, and structure of theprotein
【24h】

Microcalorimetric studies on the interaction mechanism between proteinsand hydrophobic solid surfaces in hydrophobic interaction chromatography:Effects of salts, hydrophobicity of the sorbent, and structure of theprotein

机译:疏水相互作用色谱中蛋白质与疏水性固体表面相互作用机理的微量量热研究:盐的影响,吸附剂的疏水性和蛋白质的结构

获取原文
获取原文并翻译 | 示例
           

摘要

This study examines the effects of different salts as well as the influence of the relative hydrophobicities of different sorbents on the adsorption processes of proteins in hydrophobic interaction chromatography (HIC). Comparative data acquired by the equilibrium binding analysis and by isothermal titration microcalorimetry (ITC) are presented. In particular, thermodynamic parameters, including the enthalpy changes, related to the interactions between several globular proteins and various Toyopearl 650 M sorbents under solvent conditions containing either 2.0 M ammonium sulfate or 2.0 M sodium sulfate at pH 7.0 and 298.15 K have been evaluated in terms of the molecular properties of these systems. The results reveal that the dependence of the free energy change, DeltaG(ads), for protein adsorption to HIC sorbents on the salt composition can be mainly attributed to the enthalpy changes associated with protein and sorbent dehydration and hydrophobic interactions. Differences in binding mechanisms between the n-butyl- and phenyl-HIC sorbents were evident. In the latter case, the participation of,T-x hydrophobic interactions leads to significant differences in the associated enthalpy and entropy changes. Furthermore, an increase in the hydrophobicity of either the sorbent or the protein resulted in more negative values for the free energy change, which arose mostly from dehydration processes. Entropic effects favoring HIC adsorption increased with an increase in the exposed nonpolar surface area of the protein. Consequently, an increased contribution from the entropy change to the respective change in free energy occurs when HIC sorbents or proteins of higher hydrophobicity are employed, with these larger entropy changes consistent with a change in the interaction mechanism from a binding event dominated by adsorption to a partitioning-like process. Data extracted from the ITC measurements also provided insight into the interaction mechanisms that occur between proteins and hydrophobic solid surfaces, yielding information that can be applied to the HIC purification of proteins according to the concept of critical hydrophobicity of the system and its thermodynamic consequences.
机译:这项研究检查了不同盐的影响以及不同吸附剂的相对疏水性对疏水相互作用色谱(HIC)中蛋白质吸附过程的影响。提供了通过平衡结合分析和等温滴定微量热法(ITC)获得的比较数据。特别地,在以下条件下评估了热力学参数,包括焓变化,该热力学参数与几种球蛋白与各种Toyopearl 650 M吸附剂在pH 7.0和298.15 K的2.0 M硫酸铵或2.0 M硫酸钠的溶剂条件下的相互作用有关这些系统的分子特性。结果表明,自由能变化DeltaG(ads)对盐成分上HIC吸附剂的蛋白质吸附的依赖性可主要归因于与蛋白质和吸附剂脱水以及疏水相互作用相关的焓变。正丁基-HIC吸附剂和苯基-HIC吸附剂之间的结合机理存在明显差异。在后一种情况下,T-x疏水相互作用的参与导致相关的焓变和熵变的显着差异。此外,吸附剂或蛋白质疏水性的增加导致自由能变化的更多负值,这主要是由于脱水过程引起的。促进HIC吸附的熵效应随着蛋白质暴露的非极性表面积的增加而增加。因此,当使用HIC吸附剂或疏水性更高的蛋白质时,熵变对相应自由能变化的贡献增加,这些较大的熵变与相互作用机理的变化相一致,该相互作用机理是由以吸附为主的结合事件为主。类似分区的过程。从ITC测量中提取的数据还提供了对蛋白质与疏水性固体表面之间相互作用机制的深入了解,从而根据系统的关键疏水性及其热力学后果的概念,可将其应用于HIC纯化蛋白质。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号