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[纳米喷雾解吸电喷雾电离质谱成像的最新进展]

[Recent progress in mass spectrometry imaging using nanospray desorption electrospray ionization].

作者信息

Wang Jing-Bo, Li Xiao-Lan, Fan Rui-Xia, Lü Ping, Yin Rui-Chuan

机构信息

West China School of Pharmacy, Sichuan University, Chengdu 610041, China.

出版信息

Se Pu. 2025 Jan;43(1):43-49. doi: 10.3724/SP.J.1123.2024.07013.

Abstract

Ambient mass spectrometry imaging (MSI) enables hundreds of analytes in tissue sections to be directly mapped at atmospheric pressure with minimal sample preparation. This field is currently experiencing rapid growth, with numerous reported ambient ionization techniques resulting in a "hundred flowers bloom" situation. Nanospray desorption electrospray ionization (nano-DESI), developed by the Laskin group in 2010, is a widely used liquid-extraction-based ambient ionization technique that was first used for mass spectrometry imaging of tissue in 2012. The nano-DESI probe comprises a primary capillary and a nanospray capillary, with the latter efficiently transferring analyte-containing droplets via a tiny liquid bridge formed between the probe and sample surface, thereby enabling nanoelectrospray ionization (nano-ESI) in front of the inlet of a mass spectrometer. The advantages of nano-DESI MSI include minimal sample preparation, high spatial resolution, and high sensitivity. These features are well-suited for imaging various sample types, including frozen tissue sections, microbial communities, and environmental samples. A PubMed-database search using the "nano-DESI" keyword revealed 72 related articles in the 2010-2024 period, with 34 of them published between 2021 and 2024, which indicates that nano-DESI has rapidly developed as an ambient ionization technique over recent years. Herein, we briefly introduce key nano-DESI-MSI research progress reported in the past three years with the aim of better understanding and facilitating the use of this technology. We first discuss advances in ion-source development. Since no commercial nano-DESI source exists, designing and constructing ion sources remain technical challenges that limit its development. Nano-DESI has been successfully coupled with various types of mass spectrometer, including LTQ Orbitrap, quadrupole-Orbitrap (Q Exactive), 6560 IM QTOF, timsTOF Pro2, triple quadrupole, and FTICR. These couplings have significantly expanded the applications range of the nano-DESI technique. Secondly, lipid analysis is a major nano-DESI-MSI applications area. While the complexities of lipid structures present great challenges for nano-DESI MSI, new nano-DESI coupling techniques have enabled the identification and imaging of fine lipid structures. Several novel imaging methods have recently been introduced to address difficulties associated with identifying lipid structures, such as distinguishing carbon-carbon double bonds (C=C) and -positional isomers. We finally highlight recent research progress in the nano-DESI MSI of intact protein assembles and proteoforms, which is a growing hotspot in the field. Unlike small lipid molecules, large protein molecules are very challenging to image and consequently demand higher instrumental performance (e.g., ionization efficiency, mass range, and sensitivity). In a similar manner to the ESI technique, nano-DESI tends to generate multiply charged molecular ions, which endows it with a significant advantage when imaging large protein molecules. Recent years have witnessed important nano-DESI-MSI progress for studying protein-ligand interactions and identifying and imaging endogenous proteoforms. In summary, this article focuses on nano-DESI research progress in terms of ion-source development, lipid-structure analysis, and spatial proteomics over the past three years and discusses key challenges that need to be addressed in the field.

摘要

常压质谱成像(MSI)能够在大气压下对组织切片中的数百种分析物进行直接成像,且样品制备极少。该领域目前正经历快速发展,众多已报道的常压电离技术呈现出“百花齐放”的态势。纳米喷雾解吸电喷雾电离(nano-DESI)由拉斯金团队于2010年开发,是一种广泛应用的基于液体萃取的常压电离技术,于2012年首次用于组织的质谱成像。nano-DESI探头由一根主毛细管和一根纳米喷雾毛细管组成,后者通过在探头与样品表面之间形成的微小液桥有效地传输含分析物的液滴,从而在质谱仪入口前方实现纳米电喷雾电离(nano-ESI)。nano-DESI MSI的优点包括样品制备极少、空间分辨率高和灵敏度高。这些特性非常适合对各种样品类型进行成像,包括冷冻组织切片、微生物群落和环境样品。使用“nano-DESI”关键词在PubMed数据库中进行搜索,发现在2010 - 2024年期间有72篇相关文章,其中34篇发表于2021年至2024年,这表明nano-DESI作为一种常压电离技术近年来发展迅速。在此,我们简要介绍过去三年报道的关键nano-DESI-MSI研究进展,以便更好地理解和促进该技术的应用。我们首先讨论离子源开发方面的进展。由于不存在商业化的nano-DESI源,设计和构建离子源仍然是限制其发展的技术挑战。nano-DESI已成功与各种类型的质谱仪联用,包括LTQ Orbitrap、四极杆 - 轨道阱(Q Exactive)、6560 IM QTOF、timsTOF Pro2、三重四极杆和傅里叶变换离子回旋共振(FTICR)。这些联用显著扩展了nano-DESI技术的应用范围。其次,脂质分析是nano-DESI-MSI的一个主要应用领域。虽然脂质结构的复杂性给nano-DESI MSI带来了巨大挑战,但新的nano-DESI联用技术已能够实现精细脂质结构的鉴定和成像。最近引入了几种新颖的成像方法来解决与脂质结构鉴定相关的困难,例如区分碳 - 碳双键(C = C)和位置异构体。我们最后强调完整蛋白质组装体和蛋白质变体的nano-DESI MSI方面的最新研究进展,这是该领域一个不断发展的热点。与小脂质分子不同,大蛋白质分子的成像极具挑战性,因此需要更高的仪器性能(例如电离效率、质量范围和灵敏度)。与电喷雾电离(ESI)技术类似,nano-DESI倾向于产生多电荷分子离子,这在对大蛋白质分子进行成像时赋予了它显著优势。近年来,在研究蛋白质 - 配体相互作用以及鉴定和成像内源性蛋白质变体方面,nano-DESI-MSI取得了重要进展。总之,本文重点介绍了过去三年nano-DESI在离子源开发、脂质结构分析和空间蛋白质组学方面的研究进展,并讨论了该领域需要解决的关键挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21e7/11686469/de8fa5e59649/img_1.jpg

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