Authors
Ghosh, K., Pozo-Morales, M., Eski, S. E., Tanwar, A., Motiani, R. K., Singh, S. P.
Abstract
Alcohol exposure perturbs intracellular calcium (Ca2+) homeostasis in digestive organs, yet whether common or organ-specific mechanisms coordinate this response remains unclear. Using an acute ethanol paradigm in zebrafish, single-cell transcriptomics revealed broad up-regulation of Ca2+-signaling genes in hepatocytes and pancreatic acinar cells. In vivo Ca2+ buffering with SpiCee, a genetically encoded chelator, demonstrated a shared requirement for Ca2+ flux: in hepatocytes, lineage-restricted buffering was associated with pronounced cytoplasmic vacuolation composed of lipid-negative vesicles, consistent with stalled lysosomes or autophagosomes; in pancreatic acinar cells, it was associated with accumulation of aggregated/misfolded protein. Mechanistic experiments using pharmacological inhibitors implicated distinct molecular contributors in each tissue. In hepatocytes, inhibition of Pikfyve or its downstream effector, the lysosomal Ca2+ channel TRPML1, phenocopied Ca2+ buffering. While, in acinar cells, Pick1 inhibition produced analogous associations. These data position Pikfyve and Pick1 as organ-specific components linked to the Ca2+-coupled alcohol response. Notably, pharmacologic activation of TRPML1 in hepatocytes recapitulated alcohol-like Ca2+ dynamics but increased macrophage recruitment and cell death, indicating that Ca2+ signaling is required for the alcohol response yet can be detrimental when amplified. Together, our results support a model in which alcohol elicits a shared Ca2+ dynamics across liver and pancreas, modulated by tissue-specific molecular nodes.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 22 Aug 2026.
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