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Updated: Aug 21, 2026

Ratiometric Calcium Imaging of Individual Neurons in Behaving Caenorhabditis Elegans
Published on: February 7, 2018
A ratiometric ER calcium sensor for quantitative comparisons across cell types and subcellular regions
Ryan J Farrell1,2, S Thomas Hennigan3, Kirsten G Bredvik1,4
1Department of Biochemistry, Weill Cornell Medicine, New York, NY, USA.
None:
The ER is an important regulator of Ca2+ in cells and dysregulation of ER Ca2+ homeostasis can lead to numerous pathologies. Understanding how various pharmacological and genetic perturbations of ER Ca2+ homeostasis impact cellular physiology would be facilitated by quantitative measurements of ER Ca2+ levels that allow for robust comparisons across conditions. To achieve this, we enhanced our original high dynamic range ER Ca2+ indicator, ER-GCaMP6-150, by fusing it to the HaloTag protein, which when bound to Janelia Fluor (JF) dyes creates a ratiometric ER Ca2+ probe. This probe (ER-Halo-GCaMP6-150) displayed minimal changes to the Ca2+-binding properties compared with our original ER Ca2+ probe as shown through in vitro and in cell Ca2+ calibrations. We describe a method to use this ratiometric probe for quantitative comparisons of ER Ca2+ concentrations and leverage this technique to compare ER Ca2+ levels across cell types and subcellular compartments. Using this approach, we show that the resting concentration of ER Ca2+ in primary dissociated neurons does not differ between excitatory and inhibitory subtypes nor between axonal and somatodendritic compartments. However, resting ER Ca2+ levels in neuronal somas are substantially lower than that measured in embryonic fibroblasts. The ER-Halo-GCaMP6-150 provides a robust tool to directly measure ER Ca2+ levels for studies of ER physiology across cell types and compartments.

