Recent Developments and Application of Mass Spectrometry Imaging in N-Glycosylation Studies: An Overview.

Q3 Physics and Astronomy Mass spectrometry Pub Date : 2024-01-01 Epub Date: 2024-02-27 DOI:10.5702/massspectrometry.A0142
Bharath S Kumar
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Abstract

Among the most typical posttranslational modifications is glycosylation, which often involves the covalent binding of an oligosaccharide (glycan) to either an asparagine (N-linked) or a serine/threonine (O-linked) residue. Studies imply that the N-glycan portion of a glycoprotein could serve as a particular disease biomarker rather than the protein itself because N-linked glycans have been widely recognized to evolve with the advancement of tumors and other diseases. N-glycans found on protein asparagine sites have been especially significant. Since N-glycans play clearly defined functions in the folding of proteins, cellular transport, and transmission of signals, modifications to them have been linked to several illnesses. However, because these N-glycans' production is not template driven, they have a substantial morphological range, rendering it difficult to distinguish the species that are most relevant to biology and medicine using standard techniques. Mass spectrometry (MS) techniques have emerged as effective analytical tools for investigating the role of glycosylation in health and illness. This is due to developments in MS equipment, data collection, and sample handling techniques. By recording the spatial dimension of a glycan's distribution in situ, mass spectrometry imaging (MSI) builds atop existing methods while offering added knowledge concerning the structure and functionality of biomolecules. In this review article, we address the current development of glycan MSI, starting with the most used tissue imaging techniques and ionization sources before proceeding on to a discussion on applications and concluding with implications for clinical research.

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质谱成像在 N-糖基化研究中的最新发展和应用:综述。
糖基化是最典型的翻译后修饰之一,通常涉及寡糖(聚糖)与天冬酰胺(N-连接)或丝氨酸/苏氨酸(O-连接)残基的共价结合。研究表明,糖蛋白的 N-聚糖部分可以作为特定疾病的生物标志物,而不是蛋白质本身,因为人们普遍认为,N-连接的聚糖会随着肿瘤和其他疾病的发展而变化。在蛋白质天冬酰胺位点上发现的 N-聚糖尤其重要。由于 N-聚糖在蛋白质折叠、细胞运输和信号传递中发挥着明确的功能,对它们的修饰与多种疾病有关。然而,由于这些 N-聚糖的生成不是由模板驱动的,因此它们的形态范围很大,这使得使用标准技术很难区分与生物学和医学最相关的物种。质谱(MS)技术已成为研究糖基化在健康和疾病中作用的有效分析工具。这归功于质谱设备、数据收集和样品处理技术的发展。通过原位记录聚糖分布的空间维度,质谱成像(MSI)在现有方法的基础上又增加了有关生物大分子结构和功能的知识。在这篇综述文章中,我们将从最常用的组织成像技术和电离源入手,探讨聚糖 MSI 目前的发展情况,然后讨论其应用,最后总结其对临床研究的意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mass spectrometry
Mass spectrometry Physics and Astronomy-Instrumentation
CiteScore
1.90
自引率
0.00%
发文量
3
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