利用超高效液相色谱和紫外光谱与 HRMS 同时检测技术对多肽池进行高效质量控制

Gaby Bosc-Bierne, Shireen Ewald, Oliver J. Kreuzer, Michael G. Weller
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摘要

肽池由短氨基酸序列组成,已被证明是免疫学和临床应用等多个研究领域的多功能工具。市面上有许多不同成分和变体的多肽池。然而,与其他仅由一种或几种化合物组成的试剂不同,肽池是高度复杂的产品,这使得其质量控制成为一大挑战。肽的定量分析通常需要复杂的方法,在大多数情况下需要同位素标记的标准和参考材料。通常,这样做既费力又昂贵。因此,需要一种切实可行的方法来对肽池进行质量控制。如果质量控制不力,使用这类产品可能会导致错误的实验结果,从而加剧生物医学领域众所周知的可重复性危机。在此,我们建议使用带有两个检测器的超高效液相色谱法(UHPLC),一个是用于定量分析的 214 纳米标准紫外检测器,另一个是用于确认身份的高分辨率质谱仪(HRMS)。为了实现成本效益和快速分析,定量和鉴定在一次色谱运行中完成。图中展示了优化方案,并对不同的峰整合方法进行了比较和讨论。这项工作是利用一个名为 CEF advanced 的肽池进行的,该肽池由 32 个肽段组成,这些肽段分别来自巨细胞病毒(CMV)、爱泼斯坦-巴氏病毒(EBV)和流感病毒,长度从 8 到 12 个氨基酸不等。
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Efficient Quality Control of Peptide Pools by UHPLC and Simultaneous UV and HRMS Detection
Peptide pools consist of short amino acid sequences and have proven to be versatile tools in various research areas in immunology and clinical applications. They are commercially available in many different compositions and variants. However, unlike other reagents that consist of only one or a few compounds, peptide pools are highly complex products which makes their quality control a major challenge. Quantitative peptide analysis usually requires sophisticated methods, in most cases isotope-labeled standards and reference materials. Usually, this would be prohibitively laborious and expensive. Therefore, an approach is needed to provide a practical and feasible method for quality control of peptide pools. With insufficient quality control, the use of such products could lead to incorrect experimental results, worsening the well-known reproducibility crisis in the biomedical sciences. Here we propose the use of ultra-high performance liquid chromatography (UHPLC) with two detectors, a standard UV detector at 214 nm for quantitative analysis and a high-resolution mass spectrometer (HRMS) for identity confirmation. To be cost-efficient and fast, quantification and identification are performed in one chromatographic run. An optimized protocol is shown, and different peak integration methods are compared and discussed. This work was performed using a peptide pool known as CEF advanced, which consists of 32 peptides derived from cytomegalovirus (CMV), Epstein–Barr virus (EBV) and influenza virus, ranging from 8 to 12 amino acids in length.
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