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A Realistic Neural Mass Model of the Cortex with Laminar-Specific Connections and Synaptic Plasticity – Evaluation with Auditory Habituation

机译:具有层间特定连接和突触可塑性的逼真的皮质神经质量模型–听觉习惯评估

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摘要

In this work we propose a biologically realistic local cortical circuit model (LCCM), based on neural masses, that incorporates important aspects of the functional organization of the brain that have not been covered by previous models: (1) activity dependent plasticity of excitatory synaptic couplings via depleting and recycling of neurotransmitters and (2) realistic inter-laminar dynamics via laminar-specific distribution of and connections between neural populations. The potential of the LCCM was demonstrated by accounting for the process of auditory habituation. The model parameters were specified using Bayesian inference. It was found that: (1) besides the major serial excitatory information pathway (layer 4 to layer 2/3 to layer 5/6), there exists a parallel “short-cut” pathway (layer 4 to layer 5/6), (2) the excitatory signal flow from the pyramidal cells to the inhibitory interneurons seems to be more intra-laminar while, in contrast, the inhibitory signal flow from inhibitory interneurons to the pyramidal cells seems to be both intra- and inter-laminar, and (3) the habituation rates of the connections are unsymmetrical: forward connections (from layer 4 to layer 2/3) are more strongly habituated than backward connections (from Layer 5/6 to layer 4). Our evaluation demonstrates that the novel features of the LCCM are of crucial importance for mechanistic explanations of brain function. The incorporation of these features into a mass model makes them applicable to modeling based on macroscopic data (like EEG or MEG), which are usually available in human experiments. Our LCCM is therefore a valuable building block for future realistic models of human cognitive function.
机译:在这项工作中,我们提出了一种基于神经团的生物学上现实的局部皮质回路模型(LCCM),该模型结合了先前模型尚未涵盖的大脑功能组织的重要方面:(1)兴奋性突触的活动依赖性可塑性通过神经递质的耗竭和再循环产生的耦合,以及(2)通过神经群体的层流特定分布和它们之间的连接实现真实的层间动力学。通过考虑听觉习惯化过程可以证明LCCM的潜力。使用贝叶斯推理指定模型参数。发现:(1)除了主要的串行兴奋性信息途径(第4层至第2/3层至第5/6层)外,还存在平行的“捷径”途径(第4层至第5/6层), (2)从锥体细胞到抑制性中间神经元的兴奋性信号流似乎在层内,而相反,从抑制性神经元到锥体细胞的抑制性信号流似乎在层内和层间。 (3)连接的适应速率不对称:前向连接(从第4层到第2/3层)比后向连接(从第5/6层到第4层)更容易适应。我们的评估表明,LCCM的新颖特征对于脑功能的机械解释至关重要。将这些特征合并到质量模型中后,它们便可以应用于基于宏观数据(例如EEG或MEG)的建模,而这些数据通常可以在人体实验中获得。因此,我们的LCCM是未来人类认知功能逼真的模型的宝贵构建基块。

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    Peng Wang; Thomas R. Knösche;

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  • 年(卷),期 -1(8),10
  • 年度 -1
  • 页码 e77876
  • 总页数 17
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