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Article

High-Frequency Imaging Reveals Synchronised Delta- and Theta-Band Ca2+ Oscillations in the Astrocytic Soma In Vivo

1
Institute of Organic Chemistry, HUN-REN Research Centre for Natural Sciences, Magyar tudósok körútja 2, 1117 Budapest, Hungary
2
Hevesy György PhD School of Chemistry, ELTE Eötvös Loránd University, 1117 Budapest, Hungary
*
Author to whom correspondence should be addressed.
Int. J. Mol. Sci. 2024, 25(16), 8911; https://doi.org/10.3390/ijms25168911
Submission received: 12 July 2024 / Revised: 10 August 2024 / Accepted: 13 August 2024 / Published: 16 August 2024
(This article belongs to the Special Issue The Function of Glial Cells in the Nervous System)

Abstract

One of the major breakthroughs of neurobiology was the identification of distinct ranges of oscillatory activity in the neuronal network that were found to be responsible for specific biological functions, both physiological and pathological in nature. Astrocytes, physically coupled by gap junctions and possessing the ability to simultaneously modulate the functions of a large number of surrounding synapses, are perfectly positioned to introduce synchronised oscillatory activity into the neural network. However, astrocytic somatic calcium signalling has not been investigated to date in the frequency ranges of common neuronal oscillations, since astrocytes are generally considered to be slow responders in terms of Ca2+ signalling. Using high-frequency two-photon imaging, we reveal fast Ca2+ oscillations in the soma of astrocytes in the delta (0.5–4 Hz) and theta (4–8 Hz) frequency bands in vivo in the rat cortex under ketamine–xylazine anaesthesia, which is known to induce permanent slow-wave sleep. The high-frequency astrocytic Ca2+ signals were not observed under fentanyl anaesthesia, excluding the possibility that the signals were introduced by motion artefacts. We also demonstrate that these fast astrocytic Ca2+ signals, previously considered to be exclusive to neurons, are present in a large number of astrocytes and are phase synchronised at the astrocytic network level. We foresee that the disclosure of these high-frequency astrocytic signals may help with understanding the appearance of synchronised oscillatory signals and may open up new avenues of treatment for neurological conditions characterised by altered neuronal oscillations.
Keywords: astrocytes; fast Ca2+ signals; Ca2+ oscillations; slow-wave sleep; high-frequency imaging; astrocyte–neuron interactions; astrocyte network astrocytes; fast Ca2+ signals; Ca2+ oscillations; slow-wave sleep; high-frequency imaging; astrocyte–neuron interactions; astrocyte network

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MDPI and ACS Style

Péter, M.; Héja, L. High-Frequency Imaging Reveals Synchronised Delta- and Theta-Band Ca2+ Oscillations in the Astrocytic Soma In Vivo. Int. J. Mol. Sci. 2024, 25, 8911. https://doi.org/10.3390/ijms25168911

AMA Style

Péter M, Héja L. High-Frequency Imaging Reveals Synchronised Delta- and Theta-Band Ca2+ Oscillations in the Astrocytic Soma In Vivo. International Journal of Molecular Sciences. 2024; 25(16):8911. https://doi.org/10.3390/ijms25168911

Chicago/Turabian Style

Péter, Márton, and László Héja. 2024. "High-Frequency Imaging Reveals Synchronised Delta- and Theta-Band Ca2+ Oscillations in the Astrocytic Soma In Vivo" International Journal of Molecular Sciences 25, no. 16: 8911. https://doi.org/10.3390/ijms25168911

APA Style

Péter, M., & Héja, L. (2024). High-Frequency Imaging Reveals Synchronised Delta- and Theta-Band Ca2+ Oscillations in the Astrocytic Soma In Vivo. International Journal of Molecular Sciences, 25(16), 8911. https://doi.org/10.3390/ijms25168911

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