AIMMS Division of BioAnalytical Chemistry, Faculty of Sciences, VU University Amsterdam, De Boelelaan 1083, 1081 HV Amsterdam, The Netherlands.
Anal Chem. 2013 Sep 3;85(17):8204-11. doi: 10.1021/ac401384q. Epub 2013 Aug 22.
This research presents an analytical technology for highly efficient, high-resolution, and high-yield fractionation of compounds after gas chromatography (GC) separations. The technology is straightforward, does not require sophisticated cold traps or adsorbent traps, and allows collecting large numbers of fractions during a GC run. The technology is based on direct infusion of a carrier solvent at the end of the GC column, where infusion takes place in the GC oven. Pentane and hexane used as carrier solvent showed good results. Acetonitrile also showed good results as a more polar carrier solvent. Development and optimization of the technology is described, followed by demonstration in a high-throughput effect directed analysis setting toward dioxin receptor bioactivity. The GC fractionation setup was capable of collecting fractions in the second range. As a result, fractionated compounds could be collected into one or two fractions when 6.5 s resolution fractionation was performed. Subsequently, mixtures containing polycyclic aromatic hydrocarbons, of which some are bioactive toward the dioxin receptor, were profiled with a mammalian gene reporter assay. After fractionation into 96-well plates, we used our new approach for direct cell seeding onto the fractions prior to assaying which allowed dioxin receptor bioactivity to be measured directly after fractionation. The current technology represents a great advance in effect directed analysis for environmental screening worldwide as it allows combining the preferred analytical separation technology for often non-polar environmental pollutants with environmentally relevant bioassays, in high resolution.
本研究提出了一种分析技术,用于高效、高分辨率和高产率地分离气相色谱(GC)分离后的化合物。该技术简单直接,不需要复杂的冷阱或吸附阱,并且允许在 GC 运行过程中收集大量馏分。该技术基于在 GC 柱末端直接注入载溶剂,注入在 GC 炉中进行。戊烷和己烷作为载溶剂表现出良好的效果。乙腈作为极性载溶剂也表现出良好的效果。描述了该技术的开发和优化,随后在高通量效应定向分析设置中针对二恶英受体生物活性进行了演示。GC 馏分收集装置能够在第二范围内收集馏分。因此,当进行 6.5 秒分辨率的馏分收集时,可以将馏分化合物收集到一个或两个馏分中。随后,用哺乳动物基因报告基因测定法对含有多环芳烃的混合物进行了分析,其中一些对二恶英受体具有生物活性。在将混合物分成 96 孔板后,我们使用我们的新方法在进行测定之前直接将细胞接种到馏分上,这使得可以在馏分后直接测量二恶英受体的生物活性。当前的技术代表了在全球范围内进行环境筛选的效果定向分析的重大进展,因为它允许将常用的非极性环境污染物的首选分析分离技术与环境相关的生物测定结合起来,实现高分辨率。