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Nano LC-MS using capillary columns enables accurate quantification of modified ribonucleosides at low femtomol levels

机译:使用毛细管柱的纳米LC-MS可在低飞摩尔水平下准确定量修饰核糖核苷

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摘要

Post-transcriptional chemical modifications of (t)RNA molecules are crucial in fundamental biological processes, such as translation. Despite their biological importance and accumulating evidence linking them to various human diseases, technical challenges have limited their detection and accurate quantification. Here, we present a sensitive capillary nanoflow liquid chromatography mass spectrometry (nLC-MS) pipeline for quantitative high-resolution analysis of ribonucleoside modifications from complex biological samples. We evaluated two porous graphitic carbon (PGC) materials and one end-capped C18 reference material as stationary phases for reversed-phase separation. We found that these matrices have complementing retention and separation characteristics, including the capability to separate structural isomers. PGC and C18 matrices yielded excellent signal-to-noise ratios in nLC-MS while differing in the separation capability and sensitivity for various nucleosides. This emphasizes the need for tailored LC-MS setups for optimally detecting as many nucleoside modifications as possible. Detection ranges spanning up to six orders of magnitude enable the analysis of individual ribonucleosides down to femtomol concentrations. Furthermore, normalizing the obtained signal intensities to a stable isotope labeled spike-in enabled direct comparison of ribonucleoside levels between different samples. In conclusion, capillary columns coupled to nLC-MS constitute a powerful and sensitive tool for quantitative analysis of modified ribonucleosides in complex biological samples. This setup will be invaluable for further unraveling the intriguing and multifaceted biological roles of RNA modifications.
机译:(t)RNA分子的转录后化学修饰在诸如翻译等基本生物学过程中至关重要。尽管它们具有生物学重要性,并且积累了将其与各种人类疾病联系起来的证据,但技术挑战限制了它们的检测和准确定量。在这里,我们提出了一种灵敏的毛细管纳米流液相色谱质谱(nLC-MS)管道,用于定量分析复杂生物样品中核糖核苷的高分辨率。我们评估了两种多孔石墨碳(PGC)材料和一种封端C18参比材料作为固定相的反相分离。我们发现这些基质具有互补的保留和分离特性,包括分离结构异构体的能力。 PGC和C18基质在nLC-MS中产生了极佳的信噪比,而对各种核苷的分离能力和灵敏度却有所不同。这强调了需要量身定制的LC-MS设置,以最佳地检测尽可能多的核苷修饰。检测范围跨度达六个数量级,可分析低至飞摩尔浓度的单个核糖核苷。此外,将获得的信号强度归一化为稳定的同位素标记的刺突峰可以直接比较不同样品之间的核糖核苷水平。总之,与nLC-MS耦合的毛细管柱构成了功能强大且灵敏的工具,用于定量分析复杂生物样品中修饰的核糖核苷。这种设置对于进一步阐明RNA修饰的有趣的和多方面的生物学作用将是无价的。

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