Negi, Deepika, Shorter, Susan, Goodhall, Iain, Razansky, Daniel, Shergill, Sukhi S., Ovsepian, Saak V. (2025) Structural and molecular differentiation of cultured human neurons is accompanied by alterations of spontaneous and evoked calcium dynamics. Scientific Reports, 15 . Article Number 34196. E-ISSN 2045-2322. (doi:10.1038/s41598-025-15561-0) (KAR id:111452)
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| Official URL: https://doi.org/10.1038/s41598-025-15561-0 |
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Abstract
During development, neuronal precursors transform from a pluripotent state into specialized neurons. While much research has been conducted into morphological and molecular changes, there is a pressing need to define accompanying functional alterations. We used immunofluorescence microscopy and live imaging in SH-SY5Y-derived human neurons to elucidate the relationship between structural and molecular differentiation with evoked and spontaneous Ca2+ dynamics. In the undifferentiated state expressing trace amounts of neuronal markers, SH-SY5Y cells maintain spontaneous high-amplitude slow Ca2+ oscillations, with their stimulation by carbochol activating low-amplitude Ca2+ transients. Driving SH-SY5Y cells into the 2CL state by retinoic acid facilitated the outgrowth of neurites and expression of neuron-specific proteins. These changes are accompanied by the abolition of Ca2+ oscillations. Differentiating SH-SY5Y cells into definitive neurons by a cocktail of retinoic acid and BDNF induced their polarization and enrichment with specific neuronal markers, accompanied by a resurgence of spontaneous Ca2+ oscillations but with faster kinetics. The carbachol-induced rise of Ca2+ in these cells showed a higher peak and biphasic decay. At all developmental stages, Ca2+ transients in response to ionomycin were indistinguishable. These findings lead us to conclude that a switch of Ca2+ dynamics accompanies structural and molecular differentiation of SH-SY5Y cell-derived human neurons, contributing to the developmental process.
| Item Type: | Article |
|---|---|
| DOI/Identification number: | 10.1038/s41598-025-15561-0 |
| Uncontrolled keywords: | SH-SY5Y cells; BDNF; neuroblastoma-derived neurons; spontaneous activity; calcium imaging; molecular polarization |
| Subjects: |
B Philosophy. Psychology. Religion > BF Psychology R Medicine |
| Institutional Unit: | Schools > Kent and Medway Medical School |
| Former Institutional Unit: |
There are no former institutional units.
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| Funders: |
University of Greenwich (https://ror.org/00bmj0a71)
Swiss National Science Foundation (https://ror.org/00yjd3n13) |
| SWORD Depositor: | JISC Publications Router |
| Depositing User: | JISC Publications Router |
| Date Deposited: | 02 Oct 2025 08:30 UTC |
| Last Modified: | 03 Oct 2025 11:16 UTC |
| Resource URI: | https://kar.kent.ac.uk/id/eprint/111452 (The current URI for this page, for reference purposes) |
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https://orcid.org/0000-0003-4928-9100
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