Imaging zinc speciation in the mouse hippocampus with µXANES Spectroscopic mapping
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Oxford University Press (OUP)
Abstract
Zinc ions (Zn2+) are the second most abundant trace metal ion in the brain of rodents and primates, often serving functions as a structure-stabilizing element or catalytic role. There is an additional pool of Zn2+, ∼15% of total brain Zn2+, which exists in a labile chemical form in a specific subset of glutamatergic neurons ('zinergic' or 'zincergic' neurons). The labile pool of Zn2+ is now well established to be critical for healthy memory function, with disturbance to the labile Zn2+ pool implicated in diminished memory performance during the ageing process or neurodegeneration. The chemical form of Zn2+ in the labile Zn2+ pool has however, remained unknown, largely due to the difficulty of imaging metal speciation for 'spectroscopically silent' metals such as Zn2+. In this study, we have developed X-ray absorption near edge structure (XANES) spectroscopic protocols to enable chemically specific imaging of Zn2+ speciation in murine brain (hippocampal) tissue. The protocols capitalise on the unique sensitivity of the XANES spectral region to metal ion coordination environment, enabling a direct in situ measurement of metal speciation. Key findings of our method development are characterisation of the effects of sample preparation on metal speciation, and revelation that Zn2+ coordination with histidine is likely to be the dominant coordination environment of the labile Zn2+ pool in the murine hippocampus. © The Author(s) 2026. Published by Oxford University Press. Open Access CC BY 4.0.
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Hollings, A. L., Willans, M., Lam, V., Takechi, R., Mamo, J. C. L., Mitchell, V., de Jonge, M. D., Howard, D. L., Ellison, G., & Hackett, M. J. (2026). Imaging zinc speciation in the mouse hippocampus with µXANES Spectroscopic mapping. Metallomics, 18(1). doi:10.1093/mtomcs/mfaf045