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Updated: Oct 1, 2026

Spatially Resolved, Integrated Single-Cell Multiomic Profiling of the Transcriptome and Epigenomic Targets in Frozen Tissue Sections
Published on: June 12, 2026
OpenFISH enables same-section spatial transcriptomics and MALDI-MSI integration
Xinyang Li1, Yuan Huang1, Shuo Wang1
1Institute of Genetics and Developmental Biology (IGDB), Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100101, China.
Abstract:
Integrating high-resolution spatial transcriptomics with metabolomics is essential for linking cellular identity to metabolic state, yet same-section, single-cell alignment is limited by incompatible substrates, chemistries, and imaging. We introduce OpenFISH, an open-source, low-cost, modular spatial transcriptomics platform and a matrix-assisted laser desorption ionization mass spectrometry imaging (MALDI-MSI)-compatible workflow. Through optimized tissue handling and a guided registration pipeline, OpenFISH enables cell-type-aware co-mapping of transcripts and metabolites. We demonstrate its utility by revealing cell-type-specific metabolic heterogeneity in the central nervous system and compartment-level metabolic zonation in the hippocampus. Exploratory 5xFAD experiments identify concordant cell-type-associated metabolic changes, including prominent phospholipid changes in microglia, metabolic shifts in excitatory neurons masked in aggregate analyses, and elevated lysophosphatidylethanolamine-related features in oligodendrocytes. OpenFISH also independently quantifies transposable-element activation after immune challenge and identifies candidate striatal D1-neuron patterning changes in Reeler mutants. This work provides an open, low-cost, and customizable framework for same-section spatial multi-omics.
