非线性树突集成支持单个神经元的上下状态
Alessio Quaresima1,2, Hartmut Fitz3,4, Peter Hagoort3,4
1Neurobiology of Language Department, Max Planck Institute for Psycholinguistics, 6565 XD Nijmegen, the Netherlands alessio.quaresima@pasteur.fr.
概括
树突非线性,特别是NMDA受体,通过检测微小的输入波动来驱动皮质上下状态. 这种细胞特性有助于神经元的双稳定性,独立于网络活动.
科学领域:
- 神经科学是一个神经科学.
- 计算神经科学是一种神经科学.
背景情况:
- 皮层神经元活动的变化与网络动态有关.
- 上下状态,突发的神经元过渡,通常归因于关联神经元活动.
- 细胞生理学和形态学也可能影响上下状态.
研究的目的:
- 检查树突非线性,特别是电压依赖的NMDA受体对皮质神经元反应的影响.
- 在平衡的突触输入下,与没有树突非线性的神经元模型进行比较.
- 为了研究细胞特性在皮层 bistability 的出现中的作用.
主要方法:
- 使用了带有分离的树突的双隔离神经元模型.
- 具有和没有树突非线性性的模型细胞进行比较.
- 模拟平衡的刺激/抑制突触输入和皮质类输入.
主要成果:
- NMDA受体增强了体质发射和跨隔间膜潜在的相关性.
- 树突非线性诱导了体质潜能分布中的双模性.
- 树突非线性检测到小的输入波动,产生类似实验数据的上下状态.
- 上下状态发生在具有部分禁用NMDA受体的反复网络中.
结论:
- 由NMDA受体介导的树突非线性,是产生皮质上下状态的重要因素.
- 细胞特性可以独立于网络级特征,为神经元的双稳定性做出贡献.
- 细胞和网络对上下状态出现的贡献之间存在分离.
- 突出了皮层 bistability 中树突融合和活动驱动动力学之间的相互作用.
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