平衡突触灵活性和稳定性的树突机制

IF 7.5 1区 生物学 Q1 CELL BIOLOGY Cell reports Pub Date : 2024-08-27 Epub Date: 2024-08-19 DOI:10.1016/j.celrep.2024.114638
Courtney E Yaeger, Dimitra Vardalaki, Qinrong Zhang, Trang L D Pham, Norma J Brown, Na Ji, Mark T Harnett
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引用次数: 0

摘要

生物和人工神经网络通过修改突触权重进行学习,但目前还不清楚这些系统如何既能保留以前的知识,又能获取新信息。在这里,我们展示了皮层锥体神经元可以通过在不同的树突区对突触可塑性进行不同的调节来解决可塑性与稳定性的两难问题。成年小鼠第 5 层皮质锥体神经元的斜树突选择性地接收丘脑的单突触输入,进行线性整合,并缺乏突发性时间突触电位。与此相反,基底树突不接受丘脑输入,却表现出传统的 NMDA 受体(NMDAR)介导的超线性整合和突触电位。与此相对应的是,斜分支上的棘突触在体内显示出结构可塑性的下降。斜树突突触上 NMDAR 活性和表达的选择性下降受视觉经验关键期的控制。我们的研究结果证明了一种生物学机制,即单个神经元如何通过改变不同树突领域的突触特性来保护一组输入免受持续可塑性的影响。
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A dendritic mechanism for balancing synaptic flexibility and stability.

Biological and artificial neural networks learn by modifying synaptic weights, but it is unclear how these systems retain previous knowledge and also acquire new information. Here, we show that cortical pyramidal neurons can solve this plasticity-versus-stability dilemma by differentially regulating synaptic plasticity at distinct dendritic compartments. Oblique dendrites of adult mouse layer 5 cortical pyramidal neurons selectively receive monosynaptic thalamic input, integrate linearly, and lack burst-timing synaptic potentiation. In contrast, basal dendrites, which do not receive thalamic input, exhibit conventional NMDA receptor (NMDAR)-mediated supralinear integration and synaptic potentiation. Congruently, spiny synapses on oblique branches show decreased structural plasticity in vivo. The selective decline in NMDAR activity and expression at synapses on oblique dendrites is controlled by a critical period of visual experience. Our results demonstrate a biological mechanism for how single neurons can safeguard a set of inputs from ongoing plasticity by altering synaptic properties at distinct dendritic domains.

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来源期刊
Cell reports
Cell reports CELL BIOLOGY-
CiteScore
13.80
自引率
1.10%
发文量
1305
审稿时长
77 days
期刊介绍: Cell Reports publishes high-quality research across the life sciences and focuses on new biological insight as its primary criterion for publication. The journal offers three primary article types: Reports, which are shorter single-point articles, research articles, which are longer and provide deeper mechanistic insights, and resources, which highlight significant technical advances or major informational datasets that contribute to biological advances. Reviews covering recent literature in emerging and active fields are also accepted. The Cell Reports Portfolio includes gold open-access journals that cover life, medical, and physical sciences, and its mission is to make cutting-edge research and methodologies available to a wide readership. The journal's professional in-house editors work closely with authors, reviewers, and the scientific advisory board, which consists of current and future leaders in their respective fields. The advisory board guides the scope, content, and quality of the journal, but editorial decisions are independently made by the in-house scientific editors of Cell Reports.
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