神经科学
英语
海马结构
赫比理论
突触后电位
海马体
树突棘
谷氨酸的
计算机科学
生物
人工神经网络
人工智能
谷氨酸受体
生物化学
受体
作者
Marco Uytiepo,Yongchuan Zhu,Eric A. Bushong,Filip S. Polli,Ken-Ching Chou,Elise E. Zhao,Christine Kim,Danielle Luu,Lyanne Chang,Tam Quach,Matthias G. Haberl,Luca Patapoutian,Elizabeth Beutter,Weiheng Zhang,Bo Dong,Elle McCue,Mark H. Ellisman,Anton Maximov
标识
DOI:10.1101/2024.04.23.590812
摘要
Memory engrams are formed through experience-dependent remodeling of neural circuits, but their detailed architectures have remained unresolved. Using 3D electron microscopy, we performed nanoscale reconstructions of the hippocampal CA3-CA1 pathway following chemogenetic labeling of cellular ensembles with a remote history of correlated excitation during associative learning. Projection neurons involved in memory acquisition expanded their connectomes via multi-synaptic boutons without altering the numbers and spatial arrangements of individual axonal terminals and dendritic spines. This expansion was driven by presynaptic activity elicited by specific negative valence stimuli, regardless of the co-activation state of postsynaptic partners. The rewiring of initial ensembles representing an engram coincided with local, input-specific changes in the shapes and organelle composition of glutamatergic synapses, reflecting their weights and potential for further modifications. Our findings challenge the view that the connectivity among neuronal substrates of memory traces is governed by Hebbian mechanisms, and offer a structural basis for representational drifts.
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