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Using mass spectrometry to investigate protein-surface interactions during hydrophobic interaction chromatography.

机译:使用质谱分析疏水相互作用色谱过程中的蛋白质-表面相互作用。

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Hydrophobic Interaction Chromatography (HIC) is a purification tool used at the analytical scale for the separation of therapeutic biomolecules. The many variables that affect retention and selectivity of proteins during HIC as well as the complexity of the hydrophobic effect have prevented the complete understanding and advancement of a robust, modeling approach to guide process development. In previous work, conformational changes for unstable proteins were observed to greatly affect retention (Wu et al., 1986), (Jones and Fernandez, 2003). However, we have shown with hydrogen-deuterium isotope exchange (HX) and mass spectrometry (MS) that conformational changes do not contribute to selectivity variations for three stable proteins on popular commercial HIC media, suggesting that conformational changes are not a factor for HIC selectivity changes observed for stable proteins. A closer investigation of unstable proteins showed a robust correlation between conformational changes and increased adsorption affinity caused either by increased mobile phase modulator or increased hydrophobicity of the surface despite the different selectivity patterns of the resins, indicating that conformation is not solely responsible for selectivity for unstable proteins. One possible explanation of the unexpected patterns is preferred binding orientations of the proteins that may be different for each resin. As a test of feasibility, chemical modification techniques and MS were used as an attempt to detect preferential binding. Finally, HX and MS were used to investigate the effect of a stabilizing metal additive on conformation and chromatography. The results showed a dramatic, chromatographic peak sharpening with increasing calcium concentrations, as well as increased protein stability on the surface. Despite the reported improvements to chromatography yield and purity, additives are not typically explored as a complement to HIC due to the added number of experiments, expensive, and specialized handling procedures (Gagnon and Grund, 1996). This study further supports the need for a robust HIC model approach to help guide purification process development and suggests relatively simple models of conformational change may be useful.
机译:疏水相互作用色谱法(HIC)是一种纯化工具,以分析规模用于分离治疗性生物分子。影响HIC期间蛋白质保留和选择性的许多变量以及疏水作用的复杂性阻碍了对指导过程开发的可靠建模方法的全面理解和发展。在以前的工作中,观察到不稳定蛋白质的构象变化会极大地影响保留率(Wu等人,1986)(Jones and Fernandez,2003)。然而,我们已经用氢-氘同位素交换(HX)和质谱(MS)证明,构象变化不会对流行的商业HIC介质上的三种稳定蛋白的选择性变化产生影响,这表明构象变化不是HIC选择性的因素观察到稳定蛋白质的变化。对不稳定蛋白的深入研究表明,尽管树脂的选择性模式不同,但流动相调节剂的增加或表面疏水性的增加导致构象变化与吸附亲和力之间存在密切的相关性,这表明构象不仅是不稳定分子选择性的唯一原因。蛋白质。意外模式的一种可能解释是蛋白质的优选结合方向,每种树脂的结合方向可能不同。作为可行性测试,化学修饰技术和质谱被用作检测优先结合的尝试。最后,HX和MS用于研究稳定化金属添加剂对构象和色谱的影响。结果显示,随着钙浓度的增加,色谱峰急剧增加,并且表面的蛋白质稳定性增强。尽管已报道了色谱产率和纯度方面的改进,但由于增加了实验次数,昂贵且专门的处理程序,添加剂通常不被用作HIC的补充(Gagnon和Grund,1996)。这项研究进一步支持对鲁棒的HIC模型方法的需求,以帮助指导纯化过程的发展,并提出构象变化相对简单的模型可能会有用。

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