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基于快速核磁共振技术对血清样本中癌症相关蛋白糖基化的评估

Fast NMR-Based Assessment of Cancer-Associated Protein Glycosylations from Serum Samples.

作者信息

Rudolph Lorena, Krellmann Renia, Castven Darko, Jegodzinski Lina, Deriš Helena, Štambuk Jerko, Mölbitz Jarne, Dechent Luna, Sperling Kai, Lindloge Melissa, Friedrich Nele, Schmelter Franziska, Föh Bandik, Trbojević-Akmačić Irena, Sina Christian, Nauck Matthias, Petersmann Astrid, Marquardt Jens U, Günther Ulrich L, Mallagaray Alvaro

机构信息

Institute of Chemistry and Metabolomics, University of Lübeck, Ratzeburger Allee 160, Lübeck 23562, Germany.

Institute of Clinical Chemistry and Laboratory Medicine, Carl von Ossietzky University, Ammerländer Heerstraße 114-118, Oldenburg 26129, Germany.

出版信息

Anal Chem. 2025 May 6;97(17):9367-9377. doi: 10.1021/acs.analchem.5c00285. Epub 2025 Apr 25.

Abstract

Nuclear magnetic resonance (NMR) spectra of blood serum and plasma show signals arising from metabolites, lipoproteins, and -acetyl methyl groups of -glycans covalently linked to acute-phase proteins. These glycan signals often called glycoprotein A (GlycA) and glycoprotein B (GlycB) arise from -acetyl methyl groups and have been proposed as biomarkers, initially for cardiovascular diseases, but also for other inflammatory conditions. For the detection of glycan resonances, -edited, diffusion, and relaxation filtered NMR spectroscopy (JEDI) has been proposed to suppress the lipoprotein signals. JEDI is however limited to measure those acetyl signals, whereas all other glycan resonance cannot be observed. For improved glycoprotein profiling, the signals arising from the pyranose ring protons are essential. Here, we show how selective frequency excitation combined with scalar coupling filtering can be used to dramatically increase the number of -glycan signals observable in NMR spectra of serum and plasma samples, facilitating glycosylation profiling in less than 30 min. This approach grants selective detection of sialylation, galactosylation, -acetylglucosaminylation, and fucosylation of dominant -glycans and, to some extent, -glycan branching complexity. Notably, sialylated and nonsialylated Lewis and Lewis antigens can also be observed. Lewis antigen is well established as a cancer biomarker, known as CA19-9. NMR glycosylation profiles from nine isolated serum glycoproteins show excellent agreement with well-established UHPLC-MS analysis. The proposed NMR method facilitates the detection of glycoprotein biomarkers without the need for enzymatic treatment of serum or plasma and provides a robust read-out as exemplified by samples from 33 patients with hepatocellular carcinoma.

摘要

血清和血浆的核磁共振(NMR)谱显示出代谢物、脂蛋白以及与急性期蛋白共价连接的聚糖的N - 乙酰甲基基团产生的信号。这些聚糖信号通常称为糖蛋白A(GlycA)和糖蛋白B(GlycB),来自N - 乙酰甲基基团,并已被提议作为生物标志物,最初用于心血管疾病,也用于其他炎症性疾病。为了检测聚糖共振,有人提出使用J编辑、扩散和弛豫滤波核磁共振光谱法(JEDI)来抑制脂蛋白信号。然而,JEDI仅限于测量那些乙酰信号,而所有其他聚糖共振无法观察到。为了改进糖蛋白分析,吡喃糖环质子产生的信号至关重要。在这里,我们展示了如何将选择性频率激发与标量耦合滤波相结合,用于显著增加血清和血浆样品NMR谱中可观察到的N - 聚糖信号数量,在不到30分钟内促进糖基化分析。这种方法能够选择性地检测主要N - 聚糖的唾液酸化、半乳糖基化、N - 乙酰葡糖胺基化和岩藻糖基化,并在一定程度上检测N - 聚糖分支复杂性。值得注意的是,还可以观察到唾液酸化和非唾液酸化的Lewis和Lewis抗原。Lewis抗原作为一种癌症生物标志物已得到充分证实,即CA19 - 9。来自九种分离的血清糖蛋白的NMR糖基化谱与成熟的超高效液相色谱 - 质谱分析结果显示出极好的一致性。所提出的NMR方法有助于检测糖蛋白生物标志物,无需对血清或血浆进行酶处理,并提供了可靠的读数,如33例肝细胞癌患者的样本所示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdcd/12060095/14b6f0767542/ac5c00285_0001.jpg

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