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Theta 相和尖峰时间依赖性可塑性的相互作用模拟了 theta 诱导的记忆效应。

Interaction between Theta Phase and Spike Timing-Dependent Plasticity Simulates Theta-Induced Memory Effects.

机构信息

School for Psychology and Neuroscience and Centre for Cognitive Neuroimaging, University of Glasgow, Glasgow G12 8QQ, United Kingdom

School of Psychology and Centre for Human Brain Health, University of Birmingham, Birmingham B15 2TT, United Kingdom.

出版信息

eNeuro. 2023 Mar 13;10(3). doi: 10.1523/ENEURO.0333-22.2023. Print 2023 Mar.

Abstract

Rodent studies suggest that spike timing relative to hippocampal theta activity determines whether potentiation or depression of synapses arise. Such changes also depend on spike timing between presynaptic and postsynaptic neurons, known as spike timing-dependent plasticity (STDP). STDP, together with theta phase-dependent learning, has inspired several computational models of learning and memory. However, evidence to elucidate how these mechanisms directly link to human episodic memory is lacking. In a computational model, we modulate long-term potentiation (LTP) and long-term depression (LTD) of STDP, by opposing phases of a simulated theta rhythm. We fit parameters to a hippocampal cell culture study in which LTP and LTD were observed to occur in opposing phases of a theta rhythm. Further, we modulated two inputs by cosine waves with 0° and asynchronous phase offsets and replicate key findings in human episodic memory. Learning advantage was found for the in-phase condition, compared with the out-of-phase conditions, and was specific to theta-modulated inputs. Importantly, simulations with and without each mechanism suggest that both STDP and theta phase-dependent plasticity are necessary to replicate the findings. Together, the results indicate a role for circuit-level mechanisms, which bridge the gap between slice preparation studies and human memory.

摘要

啮齿动物研究表明,突触的增强或抑制取决于棘波相对于海马θ节律的时间关系。这种变化还取决于前突触和后突触神经元之间的棘波时间,即称为棘波时间依赖性可塑性(STDP)。STDP 与θ相位依赖性学习一起,激发了多种学习和记忆的计算模型。然而,缺乏直接将这些机制与人类情景记忆联系起来的证据。在计算模型中,我们通过模拟θ节律的相反相位来调节 STDP 的长时程增强(LTP)和长时程抑制(LTD)。我们根据海马细胞培养研究中的参数进行拟合,在该研究中观察到 LTP 和 LTD 在θ节律的相反相位中发生。此外,我们通过具有 0°和异步相位偏移的余弦波来调节两个输入,并复制了人类情景记忆中的关键发现。与异相条件相比,同相信号条件下的学习优势明显,并且仅适用于θ调制输入。重要的是,有和没有每种机制的模拟都表明,STDP 和θ相位依赖性可塑性都是复制这些发现所必需的。总之,这些结果表明,电路级机制在连接切片准备研究和人类记忆方面发挥了作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50b7/10012328/4f5a67cb7f25/ENEURO.0333-22.2023_f001.jpg

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