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对多巴胺对海马CA1锥体神经元兴奋性和突触可塑性的奇特影响进行计算机模拟研究。

In silico investigation of the puzzling dopamine effects on excitability and synaptic plasticity in hippocampal CA1 pyramidal neurons.

作者信息

Manara Enrico, Mele Andrea, Migliore Michele

机构信息

Institute of Biophysics, National Research Council, Palermo, Italy.

Centro di Ricerca in Neurobiologia-D. Bovet, Department of Biology and Biotechnologies-C. Darwin, Sapienza University, 00185, Rome, Italy.

出版信息

Sci Rep. 2025 Sep 25;15(1):32822. doi: 10.1038/s41598-025-17694-8.

Abstract

It has been shown that in the CA1 region of the hippocampus, dopamine modulates memory functions by influencing spike-timing-dependent plasticity (STDP) and intrinsic neuronal properties. Although experimental findings have suggested potential mechanisms, their detailed interplay remains incompletely understood. Here, using a realistic CA1 pyramidal neuron model, we have investigated the possible effects of dopaminergic modulation on a neuron's signal integration and synaptic plasticity processes. The results suggest a physiological plausible explanation for the puzzling experimental observation that long-term potentiation (LTP) increases in spite of a reduction in the neuron's excitability, and explains why physiological dopamine levels are necessary for LTP induction. The model suggests experimentally testable predictions on which ion channel kinetic properties can modulate the interplay between synaptic plasticity and neuronal excitability, thereby identifying potential molecular targets for therapeutic intervention.

摘要

研究表明,在海马体的CA1区域,多巴胺通过影响峰时依赖可塑性(STDP)和神经元内在特性来调节记忆功能。尽管实验结果已提示了潜在机制,但其详细的相互作用仍未完全明了。在此,我们使用一个真实的CA1锥体神经元模型,研究了多巴胺能调节对神经元信号整合及突触可塑性过程的可能影响。这些结果为一个令人困惑的实验观察结果提供了一个生理上合理的解释,即尽管神经元兴奋性降低,但长时程增强(LTP)却增加了,并解释了为什么生理多巴胺水平对于LTP诱导是必要的。该模型提出了关于哪些离子通道动力学特性可调节突触可塑性与神经元兴奋性之间相互作用的可实验验证的预测,从而确定了治疗干预的潜在分子靶点。

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