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Hydrophobic interaction chromatography: Displacement modeling, process development, selectivity investigation, and displacer design.

机译:疏水作用色谱:置换模型,工艺开发,选择性研究和置换器设计。

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摘要

Hydrophobic interaction chromatography (HIC) is one of the most widely used separation technology in industry due to its unique selectivity. However, there is minimal understanding of the binding mechanism, nature of selectivity in HIC systems, and how to develop efficient HIC processes. This dissertation investigates several experimental and theoretical aspects of preparative HIC systems.; We first demonstrate the utility of hydrophobic displacement chromatography to purify an industrial fusion protein. Then, a preferential interaction quadratic (PIQ) isotherm is developed to predict solutes' behaviors under both linear and nonlinear conditions at a wide range of salt concentrations. To provide significant insight into the solute transport in HIC systems, a simple method is presented for HIC resin characterization. The results indicate that both pore and surface diffusion are rate-limiting mechanisms. The general rate model combined with the PIQ isotherm is employed to predict the solutes' eluent profiles under both displacement and gradient conditions. To aid high efficiency displacer design, isocratic experiments were conducted to obtain 43 solutes' affinities on 4 HIC resins. Results indicate that a small solute interacts with both the resin backbone chemistry as well as ligands due to the low ligands density. The backbone chemistry plays a dominant role in determining the small molecules' affinities on HIC resins. Finally, the predictive QSRR models are developed to predict the solute's affinity. To quantitatively describe protein surface properties, a new set of physically interpretable molecular descriptors is generated from protein crystal structures. Further, the effect of water and salt types (kosmotropic, chaotropic and neutral) on protein binding is studied. The preferential interaction approach was used to calculate the total number of water molecules released during the protein adsorption/desorption process, which was then used to explain the salt selectivity to proteins in HIC systems. Finally, the pH effects on protein affinity in HIC systems are investigated. The numbers of released water molecules were computed as a function of pH, salt types, and resin hydrophobicity.
机译:疏水作用色谱法(HIC)具有独特的选择性,是工业上使用最广泛的分离技术之一。但是,对结合机理,HIC系统中选择性的性质以及如何开发有效的HIC工艺的了解很少。本文研究了制备型HIC系统的几个实验和理论方面。我们首先展示了疏水置换色谱法纯化工业融合蛋白的效用。然后,开发了一个优先相互作用二次(PIQ)等温线,以预测溶质在线性和非线性条件下在宽范围的盐浓度下的行为。为了提供对HIC系统中溶质迁移的深入了解,提出了一种用于HIC树脂表征的简单方法。结果表明,孔和表面扩散都是速率限制机制。一般速率模型与PIQ等温线相结合,可用于预测在位移和梯度条件下溶质的洗脱液分布。为了帮助高效置换器设计,进行了等度实验,以在4种HIC树脂上获得43种溶质的亲和力。结果表明,由于低的配体密度,小的溶质与树脂主链化学物质和配体都相互作用。骨架化学在确定小分子在HIC树脂上的亲和力方面起主要作用。最后,开发了预测性QSRR模型来预测溶质的亲和力。为了定量描述蛋白质表面性质,从蛋白质晶体结构中产生了一组新的可物理解释的分子描述符。此外,研究了水和盐类型(同质,离液和中性)对蛋白质结合的影响。优先相互作用方法用于计算蛋白质吸附/解吸过程中释放的水分子总数,然后用于解释盐对HIC系统中蛋白质的选择性。最后,研究了pH对HIC系统中蛋白质亲和力的影响。根据pH,盐类型和树脂疏水性计算释放的水分子数量。

著录项

  • 作者

    Xia, Fang.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 274 p.
  • 总页数 274
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);
  • 关键词

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