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An investigation into the effects of protein surface modifications on protein binding affinity in ion exchange and multimodal chromatography.

机译:在离子交换和多峰色谱中研究蛋白质表面修饰对蛋白质结合亲和力的影响。

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摘要

The development of efficient bioseparation processes for the production of high-purity biopharmaceuticals is one of the most pressing challenges facing the pharmaceutical and biotechnology industries today. This has led to the development of multimodal chromatographic systems which enable a combination of interactions (e.g. electrostatics, hydrophobicity, hydrogen bonding, etc.) with a protein surface, giving rise to unique selectivities that are not seen on conventional chromatographic resins. While these new materials offer potential for bioseparations, there is a lack of fundamental understanding of the nature of binding of these ligands to protein surfaces. Homologous proteins which possess similar structures but varying surface properties provide a well defined library of molecules to examine multimodal chromatographic interactions. Different chemical modifiers were employed to generate lysozyme and horse cytochrome c charge ladders (homologous protein variants) to study the effects of protein binding in ion exchange chromatographic systems. In the study using lysozyme charge ladders, capillary zone electrophoresis (CZE) and mass spectrometry (MS) analysis of the cation exchange column eluents showed some protein variants eluting in an order contrary to conventional thinking while variants with different amounts of surface charge were also observed to be co-eluting in the same fractions. Enzyme digest-MS was carried out to determine the exact sites of modification on the protein surface and electrostatic potential maps of variants and native protein revealed important regions on the protein surface that played a significant role in determining protein retention on the ion exchanger. The retention behavior of horse cytochrome c variants on a cation exchanger was examined using a similar approach and important binding regions on the surface of the protein were defined. Homologous libraries of cold shock protein B (CspB) and ubiquitin mutants with a range of protein surface modifications were used to study differences in protein retention behavior on ion exchange as well as multimodal chromatographic systems. Examination of the elution trend of the CspB library on the ion exchange surface in concert with electrostatic potential mapping showed changes in protein retention to be dependent upon charge density and distribution as well as its locality and neighboring charged residues. Both CspB and ubiquitin libraries showed stronger retention on the multi-modal chromatographic surface as compared to the ion exchanger, with significant differences in elution order. One hypothesis is that synergistic effects of multimodal interactions are the cause of increased protein retention on multimodal resins and that the ligand interacts with regions on the protein surface that complement each mode of interaction. In contrast, the ion exchange ligand will interact with charged regions on the protein surface. To test this hypothesis, HSQC NMR titration studies were performed using 13 C/15N isotopically labeled ubiquitin and representative multimodal chromatographic and ion exchange ligands. Chemical shift mapping and determination of dissociation constants was carried out to determine the sites of interaction for the multimodal ligand and the ion exchange ligand on the protein surface. A major multimodal ligand interaction site was found on the protein surface in addition to a few weak interaction sites on other regions of the protein. In contrast, the interaction sites for the ion exchange ligand were more distributed and had binding affinities that were of an order of magnitude weaker than the multimodal ligand interaction sites. Identification of the ligand binding conformation as well as key chemical features within each ligand at its strongest interaction site was examined using a coarse-grained ligand docking program that was guided by the NMR experimental data. The multi-modal ligand was shown to interact with the protein surface through various chemical moieties on the surface of the ligand and adopted two distinct high affinity binding conformations where as the ion exchange ligand primarily interacted with the protein surface through charge re-enforced hydrogen bonds. The insights gained from these studies provide deeper fundamental understanding into the nature of selectivity in multi-modal chromatographic systems. This will enable the design of next generation multi-modal ligands and facilitate methods development for protein purification with these novel systems.
机译:开发用于生产高纯度生物制药的有效生物分离工艺是当今制药和生物技术行业面临的最紧迫的挑战之一。这导致了多峰色谱系统的发展,该系统能够将相互作用(例如静电,疏水性,氢键等)与蛋白质表面结合起来,从而产生了常规色谱树脂所没有的独特选择性。尽管这些新材料为生物分离提供了潜力,但对这些配体与蛋白质表面结合的本质缺乏基本的了解。具有相似结构但表面性质不同的同源蛋白质为检测多峰色谱相互作用提供了一个定义完善的分子库。使用不同的化学修饰剂来生成溶菌酶和马细胞色素c电荷梯(同源蛋白质变体),以研究蛋白质结合在离子交换色谱系统中的作用。在使用溶菌酶梯形图的研究中,阳离子交换柱洗脱液的毛细管区带电泳(CZE)和质谱(MS)分析显示一些蛋白质变体以与常规思维相反的顺序洗脱,同时还观察到了具有不同表面电荷量的变体以相同的比例共洗脱。进行酶消化-MS以确定蛋白质表面修饰的确切位置,变异体和天然蛋白质的静电势图揭示了蛋白质表面上的重要区域,这些区域在确定蛋白质在离子交换剂上的保留中起着重要作用。使用类似方法检查了马细胞色素c变体在阳离子交换剂上的保留行为,并定义了蛋白质表面上的重要结合区域。冷休克蛋白B(CspB)和具有一系列蛋白表面修饰的泛素突变体的同源文库用于研究离子交换以及多峰色谱系统在蛋白保留行为上的差异。检查CspB文库在离子交换表面上的洗脱趋势并结合静电势图,结果显示蛋白质保留的变化取决于电荷密度和分布及其局部性和邻近的带电残基。与离子交换剂相比,CspB和泛素文库在多峰色谱表面上均显示出更强的保留,洗脱顺序有显着差异。一种假设是多峰相互作用的协同效应是多峰树脂上蛋白质保留增加的原因,并且配体与蛋白质表面上与每种相互作用方式互补的区域相互作用。相反,离子交换配体将与蛋白质表面上的带电区域相互作用。为了验证该假设,使用13 C / 15N同位素标记的泛素以及代表性的多峰色谱和离子交换配体进行了HSQC NMR滴定研究。进行化学位移图谱和解离常数的测定,以确定多峰配体和离子交换配体在蛋白质表面上的相互作用位点。除了在蛋白质其他区域的一些弱相互作用位点之外,在蛋白质表面还发现了一个主要的多峰配体相互作用位点。相反,离子交换配体的相互作用位点分布更广泛,结合亲和力比多峰配体相互作用位点弱一个数量级。使用核磁共振实验数据指导的粗粒配体对接程序,检查了每个配体在其最强相互作用位点的配体结合构象以及关键化学特征的鉴定。显示多峰配体通过配体表面上的各种化学部分与蛋白质表面相互作用,并采用了两个不同的高亲和力结合构象,其中离子交换配体主要通过电荷增强的氢键与蛋白质表面相互作用。从这些研究中获得的见解为多峰色谱系统中选择性的性质提供了更深入的基础理解。这将使下一代多峰配体的设计成为可能,并促进使用这些新型系统进行蛋白质纯化的方法开发。

著录项

  • 作者

    Chung, Wai Keen.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:52

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