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在 AP-SMALDI MSI 系统中实现高重复率激光,以提高测量性能。

Implementation of a High-Repetition-Rate Laser in an AP-SMALDI MSI System for Enhanced Measurement Performance.

机构信息

Institute of Inorganic and Analytical Chemistry, Justus Liebig University Giessen, 35392 Giessen, Germany.

Thermo Fisher Scientific (Bremen) GmbH, 28199 Bremen, Germany.

出版信息

J Am Soc Mass Spectrom. 2021 Feb 3;32(2):465-472. doi: 10.1021/jasms.0c00368. Epub 2020 Dec 28.

Abstract

Matrix-assisted laser desorption/ionization mass spectrometry imaging is a promising tool in the life sciences for obtaining spatial and chemical information from complex biological samples. State-of-the-art setups combine high mass resolution and high mass accuracy with high lateral resolution, offering untargeted insights into biochemical processes on the single-cell length scale. Despite recent technological breakthroughs, the sensitivity and acquisition speed of many setups are often in competition with achievable pixel resolutions below 25 μm. New measurement modes were developed by implementing a high-repetition-rate laser into an AP-SMALDI10 ion source, coupled to an orbital trapping mass spectrometer. These new MSI modes allow for a modular use of the new setup. We demonstrate that the system allows single cell features to be visualized in mouse brain tissue sections at a pixel resolution of 5 μm and an imaging speed of 18 pixels/s. Furthermore, the analytical sensitivity was improved in another measurement mode by applying multiple pulses of a highly focused laser beam over larger square pixels ≥25 μm edge length, increasing ion signal intensities up to 20-fold on tissue and decreasing the limit of detection by 1 order of magnitude.

摘要

基质辅助激光解吸电离质谱成像技术是生命科学领域中一种很有前途的工具,可用于从复杂的生物样本中获取空间和化学信息。最先进的仪器设备将高质量分辨率和高质量精度与高横向分辨率相结合,为单细胞水平上的生化过程提供了非靶向的见解。尽管最近取得了技术突破,但许多仪器设备的灵敏度和采集速度往往与可实现的低于 25μm 的像素分辨率相竞争。通过将高重复率激光应用于 AP-SMALDI10 离子源,并与轨道捕获质谱仪相结合,开发了新的测量模式。这些新的 MSI 模式允许对新设备进行模块化使用。我们证明,该系统可以以 5μm 的像素分辨率和 18 像素/s 的成像速度对小鼠脑组织切片中的单个细胞特征进行可视化。此外,通过在较大的正方形像素(边长≥25μm)上施加多次聚焦激光脉冲,在另一种测量模式中提高了分析灵敏度,使组织上的离子信号强度提高了 20 倍,并将检测限降低了 1 个数量级。

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