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Extracellular ATP inhibits excitatory synaptic input on parvalbumin positive interneurons and attenuates gamma oscillations via P2X4 receptors

Title: Extracellular ATP inhibits excitatory synaptic input on parvalbumin positive interneurons and attenuates gamma oscillations via P2X4 receptors
Authors: Wildner, Florian; Neuhäusel, Tim S.; Klemz, Alexander; Kovács, Richard; Ulmann, Lauriane; Geiger, Jörg R. P.; Gerevich, Zoltan
Source: British Journal of Pharmacology ; volume 181, issue 11, page 1635-1653 ; ISSN 0007-1188 1476-5381
Publisher Information: Wiley
Publication Year: 2024
Collection: Wiley Online Library (Open Access Articles via Crossref)
Description: Background and Purpose P2X4 receptors (P2X4R) are ligand gated cation channels that are activated by extracellular ATP released by neurons and glia. The receptors are widely expressed in the brain and have fractional calcium currents comparable with NMDA receptors. Although P2X4Rs have been reported to modulate synaptic transmission and plasticity, their involvement in shaping neuronal network activity remains to be elucidated. Experimental Approach We investigated the effects of P2X receptors at network and synaptic level using local field potential electrophysiology, whole cell patch clamp recordings and calcium imaging in fast spiking parvalbumin positive interneurons (PVINs) in rat and mouse hippocampal slices. The stable ATP analogue ATPγS, selective antagonists and P2X4R knockout mice were used. Key Results The P2XR agonist ATPγS reversibly decreased the power of gamma oscillations. This inhibition could be antagonized by the selective P2X4R antagonist PSB‐12062 and was not observed in P2X4 −/− mice. The phasic excitatory inputs of CA3 PVINs were one of the main regulators of the gamma power. Associational fibre compound excitatory postsynaptic currents (cEPSCs) in CA3 PVINs were inhibited by P2X4R activation. This effect was reversible, dependent on intracellular calcium and dynamin‐dependent internalization of AMPA receptors. Conclusions and Implications The results indicate that P2X4Rs are an important source of dendritic calcium in CA3 PVINs, thereby regulating excitatory synaptic inputs onto the cells and presumably the state of gamma oscillations in the hippocampus. P2X4Rs represent an effective target to modulate hippocampal network activity in pathophysiological conditions such as Alzheimer's disease and schizophrenia.
Document Type: article in journal/newspaper
Language: English
DOI: 10.1111/bph.16298
Availability: https://doi.org/10.1111/bph.16298; https://bpspubs.onlinelibrary.wiley.com/doi/pdf/10.1111/bph.16298
Rights: http://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.AFC43289
Database: BASE