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Spatial Molecular Imaging of the Glycome Using Mass Spectrometry

  • Roberto A. Ribas
  • , Franca Bucco Paolasso
  • , Alison M. Ryan
  • , Manuel R. Sanchez
  • , Charles M. Soto
  • , Scarlett I. Caffee
  • , Reece C. Larson
  • , Derek B. Allison
  • , Matthew S. Gentry
  • , Ramon C. Sun
  • , Craig W.Vander Kooi

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

The spatial organization of the glycome within tissues is key to the molecular basis for physiological function. The diverse and dynamic glycome is critical for fundamental cellular processes, including metabolism, signaling, and adhesion. Innovations in spatial biology have ushered in new avenues for spatial molecular imaging of diverse glycome classes. Here, we describe an optimized protocol for spatial biomolecular imaging of the glycome in fresh-frozen mouse liver. The workflow comprises (1) rapid harvesting and freezing, (2) cryostat sectioning at optimal thickness and position, (3) tissue preparation and on-tissue enzyme digestion using carbohydrate-active enzymes, (4) matrix application and data acquisition by matrix-assisted laser desorption/ionization mass spectrometry imaging (MALDI-MSI), and (5) data processing and visualization to place the findings in biological context. Use of this approach allows acquisition of detailed spatial maps of N-linked glycans and glycogen, revealing key physiological and cellular features. These data allow the definition of key spatial glycomic heterogeneity associated with liver function and dysfunction. This workflow enables highly reproducible and sensitive spatial glycomics of the mouse liver. Additionally, it is readily adaptable to other tissues or species, facilitating novel spatial insights into glycome biology in health and disease.

Original languageEnglish
Article numbere69154
JournalJournal of Visualized Experiments
Volume2025-November
Issue number225
DOIs
StatePublished - Nov 2025

Bibliographical note

Publisher Copyright:
© 2025 JoVE Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License.

Funding

We acknowledge members of the Vander Kooi, Sun, and Gentry laboratories for fruitful discussions. This study was supported by National Institutes of Health (NIH) grants to the Biospecimen Procurement & Translational Pathology Shared Resource Facility of the University of Kentucky Markey Cancer Center, P30CA177558 to D.B.A., R01AG066653, R01CA266004, R01AG078702, R01CA288696, RM1NS133593 to R.C.S., R35NS116824 to M.S.G., R01DC019054 to C.W.V.K., and the University of Florida College of Medicine.

FundersFunder number
National Institutes of Health (NIH)
University of Florida College of Medicine
University of Kentucky Markey Comprehensive Cancer CenterR01AG078702, P30CA177558, R35NS116824, R01CA288696, R01CA266004, R01AG066653, RM1NS133593, R01DC019054

    ASJC Scopus subject areas

    • General Neuroscience
    • General Chemical Engineering
    • General Immunology and Microbiology
    • General Biochemistry, Genetics and Molecular Biology

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