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Temporal dynamics of learning‐promoted synaptic diversity in CA1 pyramidal neurons
Author(s) -
Sakimoto Yuya,
Kida Hiroyuki,
Mitsushima Dai
Publication year - 2019
Publication title -
the faseb journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.709
H-Index - 277
eISSN - 1530-6860
pISSN - 0892-6638
DOI - 10.1096/fj.201801893rrr
Subject(s) - neuroscience , inhibitory postsynaptic potential , synaptic plasticity , excitatory postsynaptic potential , metaplasticity , biology , population , nonsynaptic plasticity , chemistry , receptor , medicine , biochemistry , environmental health
Although contextual learning requires plasticity at both excitatory and inhibitory (E/I) synapses in cornu ammonis 1 (CA1) neurons, the temporal dynamics across the neuronal population are poorly understood. Using an inhibitory avoidance task, we analyzed the dynamic changes in learning‐induced E/I synaptic plasticity. The training strengthened GABA A receptor‐mediated synapses within 1 min, peaked at 10 min, and lasted for over 60 min. The intracellular loop (Ser 408‐409 ) of GABA A receptor β 3 subunit was also phosphorylated within 1 min of training. As the results of strengthening of α‐amino‐3‐hydroxyl‐5‐methyl‐4‐isoxazole‐propionate receptor‐mediated synapses, CA1 pyramidal neurons exhibited broad diversity of E/I synaptic currents within 5 min. Moreover, presynaptic glutamate release probability at basal dendrites also increased within 5 min. To further quantify the diversified E/I synaptic currents, we calculated self‐entropy (bit) for individual neurons. The neurons showed individual levels of the parameter, which rapidly increased within 1 min of training and maintained for over 60 min. These results suggest that learning‐induced synaptic plasticity is critical immediately following encoding rather than during the retrieval phase of the learning. Understanding the temporal dynamics along with the quantification of synaptic diversity would be necessary to identify a failure point for learning‐promoted plasticity in cognitive disorders.—Sakimoto, Y., Kida, H., Mitsushima, D. Temporal dynamics of learning‐promoted synaptic diversity in CA1 pyramidal neurons. FASEB J. 33, 14382‐14393 (2019). www.fasebj.org