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超高效液相色谱电荷转移解离质谱法(UHPLC-CTD-MS)作为分析卡拉胶寡糖结构异质性的工具。

Ultra-high-performance liquid chromatography charge transfer dissociation mass spectrometry (UHPLC-CTD-MS) as a tool for analyzing the structural heterogeneity in carrageenan oligosaccharides.

作者信息

Mendis Praneeth M, Sasiene Zachary J, Ropartz David, Rogniaux Hélène, Jackson Glen P

机构信息

C. Eugene Bennett Department of Chemistry, West Virginia University, Morgantown, WV, 26506-6121, USA.

INRAE, UR BIA, 44316, Nantes, France.

出版信息

Anal Bioanal Chem. 2022 Jan;414(1):303-318. doi: 10.1007/s00216-021-03396-3. Epub 2021 May 29.

Abstract

Ultra-high-performance liquid chromatography (UHPLC) with charge transfer dissociation mass spectrometry (CTD-MS) is presented for the analysis of a mixture of complex sulfated oligosaccharides. The mixture contained kappa (κ), iota (ι), and lambda (λ) carrageenans that contain anhydro bridges, different degrees of sulfation ranging from one to three per dimer, different positioning of the sulfate groups along the backbone, and varying degrees of polymerization (DP) between 4 and 12. Optimization studies using standard mixtures of carrageenans helped establish the optimal conditions for online UHPLC-CTD-MS/MS analysis. Optimization included (1) UHPLC conditions; (2) ion source conditions, such as the capillary voltage, drying gas and nebulizing gas temperature, and flow rate; and (3) CTD-MS conditions, including data-dependent CTD-MS. The UHPLC-CTD results were contrasted with UHPLC-CID results of the same mixture on the same instrument. Whereas CID tends to produce B/Y and C/Z ions with many neutral losses, CTD produced more abundant A/X ions and less abundant neutral losses, which enabled more confident structural detail. The results demonstrate that He-CTD is compatible with the timescale of UHPLC and provides more structural information about carrageenans compared to state-of-the-art methods like UHPLC-CID analysis.

摘要

本文介绍了采用电荷转移解离质谱(CTD-MS)的超高效液相色谱(UHPLC)法分析复杂硫酸化低聚糖混合物。该混合物包含κ-、ι-和λ-卡拉胶,它们含有脱水桥,每个二聚体的硫酸化程度从一到三个不等,硫酸基团沿主链的位置不同,聚合度(DP)在4到12之间变化。使用卡拉胶标准混合物进行的优化研究有助于确定在线UHPLC-CTD-MS/MS分析的最佳条件。优化包括:(1)UHPLC条件;(2)离子源条件,如毛细管电压、干燥气和雾化气温度及流速;(3)CTD-MS条件,包括数据依赖型CTD-MS。在同一仪器上,将该混合物的UHPLC-CTD结果与UHPLC-CID结果进行了对比。虽然CID倾向于产生带有许多中性损失的B/Y和C/Z离子,但CTD产生了更丰富的A/X离子和较少的中性损失,从而能够更可靠地确定结构细节。结果表明,氦气CTD与UHPLC的时间尺度兼容,与UHPLC-CID分析等现有方法相比,能提供更多关于卡拉胶的结构信息。

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