| Literature DB >> 24710057 |
Takuya Sasaki1, Tomoe Ishikawa2, Reimi Abe2, Ryota Nakayama2, Akiko Asada2, Norio Matsuki2, Yuji Ikegaya3.
Abstract
Astrocytes are thought to detect neuronal activity in the form of intracellular calcium elevations; thereby, astrocytes can regulate neuronal excitability and synaptic transmission. Little is known, however, about how the astrocyte calcium signal regulates the activity of neuronal populations. In this study, we addressed this issue using functional multineuron calcium imaging in hippocampal slice cultures. Under normal conditions, CA3 neuronal networks exhibited temporally correlated activity patterns, occasionally generating large synchronization among a subset of cells. The synchronized neuronal activity was correlated with astrocyte calcium events. Calcium buffering by an intracellular injection of a calcium chelator into multiple astrocytes reduced the synaptic strength of unitary transmission between pairs of surrounding pyramidal cells and caused desynchronization of the neuronal networks. Uncaging the calcium in the astrocytes increased the frequency of neuronal synchronization. These data suggest an essential role of the astrocyte calcium signal in the maintenance of basal neuronal function at the circuit level.Entities:
Mesh:
Year: 2014 PMID: 24710057 PMCID: PMC4221819 DOI: 10.1113/jphysiol.2014.272864
Source DB: PubMed Journal: J Physiol ISSN: 0022-3751 Impact factor: 5.182