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bioRxiv · 10.64898/2026.08.21.746222

STILL-13C: Spatial tracing of isotopically labelled lipids with 13C reveals metabolic heterogeneity in intact tissues

Abstract

Lipid metabolism is dynamically rewired across tissues in response to developmental, environmental and therapeutic cues. This adaptation drives treatment resistance in a range of human pathologies, but current lipidomic techniques fail to capture the underlying mechanisms, relying on steady-state measurements from homogenised samples that obscure spatial heterogeneity and pathway flux. Here we introduce spatial tracing of isotopically labelled lipids (STILL-13C), a workflow that uses stable isotope tracing and high-resolution mass spectrometry imaging (MSI) to map lipid metabolic flux directly in intact human tissues with unprecedented pathway coverage. STILL-13C overcomes longstanding limitations of bulk and MSI-based analyses by spatially resolving isotopologue labelling of simple and complex lipids, enabling simultaneous tracing of fatty acid synthesis, remodelling and multiple convergent pathways required for phospholipid assembly, while preserving tissue architecture and regional metabolic context. Applied to patient-derived prostate cancer explants cultured ex vivo, STILL-13C revealed heterogeneity in lipid pathway activity between neighbouring epithelial regions and spatially resolved responses to pathway inhibition. This work establishes a broadly applicable platform for investigating spatial heterogeneity in lipid metabolic flux and its perturbation in intact tissues.

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BibTeXRIS

Truong, J. X. M., Trim, P. J., Mckinnon, J. C., Taylor, K. A., Snel, M. F., Ellis, S. R., Swinnen, J. V., Butler, L. M.. 2026-08-24. STILL-13C: Spatial tracing of isotopically labelled lipids with 13C reveals metabolic heterogeneity in intact tissues. https://doi.org/10.64898/2026.08.21.746222

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