LC-MS中氧脂质电离的物种特异性优化:一种提高灵敏度的实验方法设计。

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Analytical and Bioanalytical Chemistry Pub Date : 2025-04-01 Epub Date: 2025-02-01 DOI:10.1007/s00216-025-05759-6
Louis Schmidt, Ulrike Garscha
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引用次数: 0

摘要

氧脂素是一种具有多种生物活性的信号分子,在复杂的基质中以极低的浓度存在,这给实现一致和敏感的分析带来了挑战。UHPLC-MS/MS是分离和定量这些分子的首选技术,通常使用耗时的试错方法进行优化。在这项研究中,我们采用实验设计(DoE)的方法系统地研究了多种氧脂质的电离特性。采用分数因子设计和中心复合设计检测相关仪器参数,优化ESI-MS/MS分析信号强度。响应面模型揭示了极性和极性氧脂之间不同的电离和断裂行为,这是由它们对界面温度和碰撞诱导解离(CID)气体压力的响应驱动的。特别是,前列腺素和脂肪素在较高的CID气体压力和较低的温度下,与亲脂的hode和hete相比,可以在多反应监测分析中获得最佳强度。虽然优化了全局源参数,但分析物特定的入口/出口势和碰撞能量需要单独调整。最后采用该方法对白三烯类、前列腺素类、脂质类、分解素类、HETEs类、HODES类和HoTrEs类7种氧脂类进行分析。虽然量化下限的改善幅度不大(
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Species-specific optimization of oxylipin ionization in LC-MS: a design of experiments approach to improve sensitivity.

Oxylipins are diverse bioactive signaling molecules, which occur in very low concentrations in complex matrices, posing challenges in achieving consistent and sensitive analysis. UHPLC-MS/MS is the preferred technique to separate and quantify these molecules, often optimized using a time-consuming trial-and-error approach. In this study, we applied the design of experiments (DoE) approach to systematically investigate the ionization properties of multiple oxylipin species. Fractional factorial and central composite designs were employed to detect relevant instrument parameters and optimize signal intensity in ESI-MS/MS analysis. Response surface modeling revealed distinct ionization and fragmentation behaviors between polar and apolar oxylipins, driven by their responses to interface temperature and collision-induced dissociation (CID) gas pressure. Particularly, prostaglandins and lipoxins benefit from higher CID gas pressure and lower temperatures compared to the lipophilic HODEs and HETEs to achieve optimal intensity in multiple reaction monitoring analysis. While global source parameters were optimized, analyte-specific entrance/exit potentials and collision energies required individual adjustments. The final method was applied to analyze seven oxylipin classes including leukotrienes, prostaglandins, lipoxins, resolvins, HETEs, HODES, and HoTrEs. Although improvements in lower limits of quantification were modest (< 1 pg on-column), signal-to-noise ratios increased two-fold for lipoxins and resolvins and three- to four-fold for leukotrienes and HETEs, enhancing detection at trace levels. This DoE-guided strategy provides a powerful tool to improve UHPLC-MS/MS analysis of oxylipins across various instrument vendors, guiding the way towards inter-laboratory comparability.

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来源期刊
CiteScore
8.00
自引率
4.70%
发文量
638
审稿时长
2.1 months
期刊介绍: Analytical and Bioanalytical Chemistry’s mission is the rapid publication of excellent and high-impact research articles on fundamental and applied topics of analytical and bioanalytical measurement science. Its scope is broad, and ranges from novel measurement platforms and their characterization to multidisciplinary approaches that effectively address important scientific problems. The Editors encourage submissions presenting innovative analytical research in concept, instrumentation, methods, and/or applications, including: mass spectrometry, spectroscopy, and electroanalysis; advanced separations; analytical strategies in “-omics” and imaging, bioanalysis, and sampling; miniaturized devices, medical diagnostics, sensors; analytical characterization of nano- and biomaterials; chemometrics and advanced data analysis.
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