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电感耦合等离子体质谱及其在医学科学中的应用-第 1 部分:基础、独立和联用技术。

Facets of ICP-MS and their potential in the medical sciences-Part 1: fundamentals, stand-alone and hyphenated techniques.

机构信息

Nano Mirco LAB, Institute of Chemistry, University of Graz, Graz, Austria.

TESLA-Analytical Chemistry, Institute of Chemistry, University of Graz, Graz, Austria.

出版信息

Anal Bioanal Chem. 2022 Oct;414(25):7337-7361. doi: 10.1007/s00216-022-04259-1. Epub 2022 Aug 27.

Abstract

Since its inception in the early 80s, inductively coupled plasma-mass spectrometry has developed to the method of choice for the analysis of elements in complex biological systems. High sensitivity paired with isotopic selectivity and a vast dynamic range endorsed ICP-MS for the inquiry of metals in the context of biomedical questions. In a stand-alone configuration, it has optimal qualities for the biomonitoring of major, trace and toxicologically relevant elements and may further be employed for the characterisation of disrupted metabolic pathways in the context of diverse pathologies. The on-line coupling to laser ablation (LA) and chromatography expanded the scope and application range of ICP-MS and set benchmarks for accurate and quantitative speciation analysis and element bioimaging. Furthermore, isotopic analysis provided new avenues to reveal an altered metabolism, for the application of tracers and for calibration approaches. In the last two decades, the scope of ICP-MS was further expanded and inspired by the introduction of new instrumentation and methodologies including novel and improved hardware as well as immunochemical methods. These additions caused a paradigm shift for the biomedical application of ICP-MS and its impact in the medical sciences and enabled the analysis of individual cells, their microenvironment, nanomaterials considered for medical applications, analysis of biomolecules and the design of novel bioassays. These new facets are gradually recognised in the medical communities and several clinical trials are underway. Altogether, ICP-MS emerged as an extremely versatile technique with a vast potential to provide novel insights and complementary perspectives and to push the limits in the medical disciplines. This review will introduce the different facets of ICP-MS and will be divided into two parts. The first part will cover instrumental basics, technological advances, and fundamental considerations as well as traditional and current applications of ICP-MS and its hyphenated techniques in the context of biomonitoring, bioimaging and elemental speciation. The second part will build on this fundament and describe more recent directions with an emphasis on nanomedicine, immunochemistry, mass cytometry and novel bioassays.

摘要

自 20 世纪 80 年代初问世以来,电感耦合等离子体质谱法已发展成为分析复杂生物系统中元素的首选方法。高灵敏度与同位素选择性相结合,以及广泛的动态范围,使 ICP-MS 成为生物医学问题中金属研究的首选方法。在独立配置中,它具有最佳的品质,可用于监测主要元素、痕量元素和毒理学相关元素,并且可以进一步用于多种病理情况下代谢途径中断的特征描述。与激光烧蚀 (LA) 和色谱的在线耦合扩展了 ICP-MS 的范围和应用领域,并为准确和定量的形态分析和元素生物成像设定了基准。此外,同位素分析为揭示改变的新陈代谢、示踪剂的应用和校准方法提供了新的途径。在过去的二十年中,随着新型仪器和方法的引入,包括新型和改进的硬件以及免疫化学方法,ICP-MS 的范围进一步扩大,并受到启发。这些补充为 ICP-MS 的生物医学应用带来了范式转变,对医学科学产生了影响,并使分析单个细胞、它们的微环境、用于医学应用的纳米材料、生物分子分析和新型生物测定的设计成为可能。这些新方面逐渐得到医学界的认可,并且正在进行几项临床试验。总之,ICP-MS 已成为一种极其通用的技术,具有提供新见解和互补视角的巨大潜力,并推动了医学领域的极限。本综述将介绍 ICP-MS 的不同方面,并分为两部分。第一部分将涵盖仪器基础、技术进步、基本考虑因素以及 ICP-MS 及其在生物监测、生物成像和元素形态分析中的联用技术的传统和当前应用。第二部分将在此基础上进行扩展,并重点介绍纳米医学、免疫化学、质谱流式细胞术和新型生物测定等最近的方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b74f/9482897/e8a87a491a5a/216_2022_4259_Fig1_HTML.jpg

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