InSitu Untargeted Metabolite Identification and Spatial Mapping by Clustering Resampling Mass Spectrometry Imaging

Abstract Mass spectrometry imaging enables the spatially resolved analysis of molecular distributions in biological tissues. However, in situ untargeted metabolite identification remains challenging due to the inherent trade-off between spatial resolution and in situ tandem mass spectrometry (MS2) acquisition. Here, we developed clustering resampling mass spectrometry imaging (CR-MSI), a method that innovatively converts in situ MS2 acquisition from countless pixel scans to a few representative points testing. CR-MSI allows the acquisition of both spatial localization and structural fragmentation data for metabolites from a single tissue section. Additionally, we have engineered an integrated device that automates the CR-MSI workflow, transforming MS2 acquisition from an empirical, operator-dependent procedure to an objective, data-driven process. Moreover, the synchronization between MSI data acquisition and processing has improved the efficiency and overall MSI throughput. When applied to rat brain, CR-MSI collected 1,175 MS2 species, representing a 410% increase compared with conventional techniques. This approach will vastly enhance the structural elucidation of untargeted mass spectrometry imaging.

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Publication Details

Journal
Analytical Chemistry
Published
2026-09-17
DOI
https://doi.org/10.1021/acs.analchem.6c02449
Primary Topic
Mass Spectrometry Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

InSitu Untargeted Metabolite Identification and Spatial Mapping by Clustering Resampling Mass Spectrometry Imaging

Chaoting Shi, Fei Ran, Fan Wu, Yilin Liu et al.
Analytical Chemistry
Mass Spectrometry Techniques and Applications
article

InSitu Untargeted Metabolite Identification and Spatial Mapping by Clustering Resampling Mass Spectrometry Imaging

Chaoting Shi, Fei Ran, Fan Wu, Yilin Liu, Yan Zhou, Yu Ye, Yu Wang, Wenlin Wu, Bing Xia, Zhuolin Jin, Wenjian Gu
article en

Abstract

Abstract Mass spectrometry imaging enables the spatially resolved analysis of molecular distributions in biological tissues. However, in situ untargeted metabolite identification remains challenging due to the inherent trade-off between spatial resolution and in situ tandem mass spectrometry (MS2) acquisition. Here, we developed clustering resampling mass spectrometry imaging (CR-MSI), a method that innovatively converts in situ MS2 acquisition from countless pixel scans to a few representative points testing. CR-MSI allows the acquisition of both spatial localization and structural fragmentation data for metabolites from a single tissue section. Additionally, we have engineered an integrated device that automates the CR-MSI workflow, transforming MS2 acquisition from an empirical, operator-dependent procedure to an objective, data-driven process. Moreover, the synchronization between MSI data acquisition and processing has improved the efficiency and overall MSI throughput. When applied to rat brain, CR-MSI collected 1,175 MS2 species, representing a 410% increase compared with conventional techniques. This approach will vastly enhance the structural elucidation of untargeted mass spectrometry imaging.

Analytical Chemistry
Shandong Institute of Food and Drug Inspection (CN), Sichuan Entry-Exit Inspection and Quarantine Bureau (CN), Institute of State Administration (RU), Chengdu Institute of Biology (CN), University of Chinese Academy of Sciences (CN)
Natural Science Foundation of Sichuan Province, Chengdu Institute of Biology, Key Research and Development Program of Sichuan Province
Openalex Percentile: Top 22%
Mass Spectrometry Techniques and Applications
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