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GIAnT: a Glutamate Imaging Analysis Toolbox

Created on 14 Aug 2026

Authors

Xie, M. E., Friedrich, J., Wirsching, E., Shibu, C. J., Seyedolmohadesin, M., Ouellette, N., Wang, T., Svoboda, K., Charles, A. S., Podgorski, K.

Abstract

Recent advances in fluorescent indicators and optical microscopy now enable in vivo synaptic imaging of glutamate, which transmits the majority of signals between neurons in the brain. Extracting fluorescence signals from these recordings is complicated by the minuscule scale and dense clustering of synapses on dendrites, as well as brain motion in behaving animals. Here we present the Glutamate Imaging Analysis Toolbox (GIAnT), a set of automated tools for glutamate imaging data that corrects sample motion, identifies active synapses with super-resolution precision, and extracts synaptic fluorescence signals. Compared to methods designed for cellular imaging, GIAnT reduces motion artifacts, more accurately identifies active synapses, and improves extracted signal quality by reducing contamination from overlapping synapses. By pairing in vivo glutamate imaging with post hoc expansion microscopy, we find that >70% of the putative synapses extracted using GIAnT matched one-to-one with glutamatergic synapses onto the postsynaptic cell. Our results establish GIAnT as an automated and validated pipeline for processing synaptic glutamate imaging data at scale.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 14 Aug 2026.

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