All-optical physiology resolves a synaptic basis for behavioral timescale plasticity

光遗传学 神经科学 生物 突触可塑性 变质塑性 海马结构 突触标度 神经传递 生物化学 受体
作者
Linlin Z. Fan,Doo Kyung Kim,Joshua H. Jennings,He Tian,Peter Y. Wang,Charu Ramakrishnan,Sawyer Randles,Yanjun Sun,Elina Thadhani,Yoon Seok Kim,Sean Quirin,Lisa M. Giocomo,Adam E. Cohen,Karl Deisseroth
出处
期刊:Cell [Elsevier]
卷期号:186 (3): 543-559.e19 被引量:34
标识
DOI:10.1016/j.cell.2022.12.035
摘要

Learning has been associated with modifications of synaptic and circuit properties, but the precise changes storing information in mammals have remained largely unclear. We combined genetically targeted voltage imaging with targeted optogenetic activation and silencing of pre- and post-synaptic neurons to study the mechanisms underlying hippocampal behavioral timescale plasticity. In mice navigating a virtual-reality environment, targeted optogenetic activation of individual CA1 cells at specific places induced stable representations of these places in the targeted cells. Optical elicitation, recording, and modulation of synaptic transmission in behaving mice revealed that activity in presynaptic CA2/3 cells was required for the induction of plasticity in CA1 and, furthermore, that during induction of these place fields in single CA1 cells, synaptic input from CA2/3 onto these same cells was potentiated. These results reveal synaptic implementation of hippocampal behavioral timescale plasticity and define a methodology to resolve synaptic plasticity during learning and memory in behaving mammals.
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