Institute for Chemical Technologies and Analytics, TU Wien (Vienna University of Technology), Vienna, Austria.
Electrophoresis. 2021 Jun;42(11):1202-1208. doi: 10.1002/elps.202100018. Epub 2021 Mar 10.
Gas-phase electrophoresis yields size distributions of polydisperse, aerosolized analytes based on electrophoretic principles. Nanometer-sized, surface-dry, single-charged particles are separated in a high laminar sheath flow of particle-free air and an orthogonal tunable electric field. Additionally, nano Electrospray Gas-Phase Electrophoretic Mobility Molecular Analyzer (nES GEMMA) data are particle-number based. Therefore, small particles can be detected next to larger ones without a bias, for example, native proteins next to their aggregates. Analyte transition from the liquid to the gas phase is a method inherent prerequisite. In this context, nonvolatile sample buffers influence results. In the worst case, the (bio-)nanoparticle signal is lost due to an increased baseline and unspecific clustering of nonvolatile components. We present a novel online hyphenation of liquid chromatography and gas-phase electrophoresis, coupling a size-exclusion chromatography (SEC) column to an advanced nES GEMMA. Via this novel approach, it is possible to (i) separate analyte multimers already present in liquid phase from aggregates formed during the nES process, (ii) differentiate liquid phase and spray-induced multimers, and (iii) to remove nonvolatile buffer components online before SEC-nES GEMMA analysis. Due to these findings, SEC-nES GEMMA has the high potential to help to understand aggregation processes in biological buffers adding the benefit of actual size determination for noncovalent assemblies formed in solution. As detection and characterization of protein aggregation in large-scale pharmaceutical production or sizing of noncovalently bound proteins are findings directly related to technologically and biologically relevant situations, we proposed the presented method to be a valuable addition to LC-MS approaches.
基于电泳原理,气相电泳可根据粒径分布对分散的气溶胶化分析物进行分离。在无颗粒的空气高层流鞘流和正交可调电场中,纳米级、表面干燥、单电荷颗粒得以分离。此外,纳米电喷雾气相电泳迁移率分子分析器(nES GEMMA)的数据基于颗粒数。因此,小颗粒可以与大颗粒相邻而被检测到,不会产生偏差,例如,天然蛋白质与其聚集体相邻。分析物从液相到气相的转变是一种固有方法的前提。在这种情况下,非挥发性样品缓冲液会影响结果。在最坏的情况下,由于基线增加和非挥发性成分的非特异性聚集,(生物)纳米颗粒信号会丢失。我们提出了一种新颖的液相色谱和气相电泳在线联用方法,将尺寸排阻色谱(SEC)柱与先进的 nES GEMMA 耦合。通过这种新方法,可以(i)将液相中已经存在的分析物多聚体与 nES 过程中形成的聚集体分离,(ii)区分液相和喷雾诱导的多聚体,以及(iii)在 SEC-nES GEMMA 分析之前在线去除非挥发性缓冲成分。由于这些发现,SEC-nES GEMMA 具有帮助理解生物缓冲液中聚集过程的巨大潜力,增加了溶液中形成的非共价组装体的实际尺寸测定的优势。由于在大规模制药生产中检测和表征蛋白质聚集或非共价结合的蛋白质的尺寸与技术和生物学相关情况直接相关,我们提出将所提出的方法作为 LC-MS 方法的有价值补充。