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Gating of hippocampal rhythms and memory by synaptic plasticity in inhibitory interneurons. | LitMetric

Gating of hippocampal rhythms and memory by synaptic plasticity in inhibitory interneurons.

Neuron

Department of Neurobiology and Department of Neurology of Second Affiliated Hospital, Mental Health Center, Zhejiang University School of Medicine, Hangzhou 310058, China; NHC and CAMS Key Laboratory of Medical Neurobiology, MOE Frontier Science Center for Brain Research and Brain-Machine Integratio

Published: March 2021


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Article Abstract

Mental experiences can become long-term memories if the hippocampal activity patterns that encode them are broadcast during network oscillations. The activity of inhibitory neurons is essential for generating these neural oscillations, but molecular control of this dynamic process during learning remains unknown. Here, we show that hippocampal oscillatory strength positively correlates with excitatory monosynaptic drive onto inhibitory neurons (E→I) in freely behaving mice. To establish a causal relationship between them, we identified γCaMKII as the long-sought mediator of long-term potentiation for E→I synapses (LTP), which enabled the genetic manipulation of experience-dependent E→I synaptic input/plasticity. Deleting γCaMKII in parvalbumin interneurons selectively eliminated LTP and disrupted experience-driven strengthening in theta and gamma rhythmicity. Behaviorally, this manipulation impaired long-term memory, for which the kinase activity of γCaMKII was required. Taken together, our data suggest that E→I synaptic plasticity, exemplified by LTP, plays a gatekeeping role in tuning experience-dependent brain rhythms and mnemonic function.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9239733PMC
http://dx.doi.org/10.1016/j.neuron.2021.01.014DOI Listing

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