神经科学
突触可塑性
细胞内
海马结构
神经传递
信息传输
计算机科学
信息处理
长时程增强
变质塑性
传输(电信)
树突棘
生物
细胞生物学
计算机网络
电信
生物化学
受体
作者
Hang Zhou,Guo‐Qiang Bi,Guosong Liu
标识
DOI:10.1038/s41467-024-47571-3
摘要
Abstract Synapses at dendritic branches exhibit specific properties for information processing. However, how the synapses are orchestrated to dynamically modify their properties, thus optimizing information processing, remains elusive. Here, we observed at hippocampal dendritic branches diverse configurations of synaptic connectivity, two extremes of which are characterized by low transmission efficiency, high plasticity and coding capacity, or inversely. The former favors information encoding, pertinent to learning, while the latter prefers information storage, relevant to memory. Presynaptic intracellular Mg 2+ crucially mediates the dynamic transition continuously between the two extreme configurations. Consequently, varying intracellular Mg 2+ levels endow individual branches with diverse synaptic computations, thus modulating their ability to process information. Notably, elevating brain Mg 2+ levels in aging animals restores synaptic configuration resembling that of young animals, coincident with improved learning and memory. These findings establish intracellular Mg 2+ as a crucial factor reconfiguring synaptic connectivity at dendrites, thus optimizing their branch-specific properties in information processing.
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