首页> 外文期刊>Journal of integrative neuroscience. >Anatomically-constrained effective connectivity among layers in a cortical column modeled and estimated from local field potentials.
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Anatomically-constrained effective connectivity among layers in a cortical column modeled and estimated from local field potentials.

机译:根据局部场电势建模和估算的皮质柱中各层之间的解剖约束有效连通性。

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We propose a neural mass model for anatomically-constrained effective connectivity among neuronal populations residing in four layers (L2/3, L4, L5 and L6) within a cortical column. Eight neuronal populations in a given column--an excitatory population and an inhibitory population per layer--are assumed to be coupled via effective connections of unknown strengths that need to be estimated. The effective connections are constrained to anatomical connections that have been shown to exist in previous anatomical studies. The neural input to a cortical column is directed into the two populations in L4. The anatomically-constrained effective connectivity is captured by a system of 16 stochastic differential equations. Solving these equations yields the average postsynaptic potentials and transmembrane currents generated in each population. The current source density (CSD) responses in each layer, which serve as the model observations, are equated in the model to the sum of all currents generated within that layer. The model is implemented in a continuous-discrete state-space framework, and the innovation method is used for estimating the model parameters from CSD data. To this end, local field potential (LFP) responses to forepaw stimulation were recorded in rat area S1 using multi-channel linear probes. LFPs were converted to CSD signals, which were averaged within each layer, yielding one CSD response per layer. To estimate the effective strengths of connections between all cortical layers, the model was fitted to these CSD signals. The results show that the pattern of effective interactions is strongly influenced by the pattern of strengths of the anatomical connections; however, these two patterns are not identical. The estimated anatomically-constrained effective connectivity matrix and the anatomical connectivity matrix shared five of their six strongest connections, although rankings according to connection strength differed. The strongest effective connections were from excitatory neurons in layer 4 to excitatory neurons in layer 2/3. Our study shows the feasibility of estimating anatomically-constrained effective connectivity within a cortical column, and indicates that there is a strong influence of anatomical connectivity on effective connectivity between cortical layers.
机译:我们提出了一个神经质量模型,用于在皮层列中位于四层(L2 / 3,L4,L5和L6)的神经元群体之间受到解剖学约束的有效连通性。给定列中的八个神经元种群-每层有一个兴奋性种群和一个抑制性种群-假定是通过未知强度的有效连接而耦合的,这些强度需要进行估计。有效的连接仅限于在先前的解剖学研究中已经存在的解剖学连接。皮层柱的神经输入被定向到L4中的两个种群。解剖学上受约束的有效连通性由一个包含16个随机微分方程的系统捕获。求解这些方程式可得出每个种群中产生的平均突触后电位和跨膜电流。每层中的电流源密度(CSD)响应(用作模型观测值)在模型中等于该层内生成的所有电流的总和。该模型是在连续离散状态空间框架中实现的,该创新方法用于从CSD数据估计模型参数。为此,使用多通道线性探针在大鼠区域S1中记录了对前爪刺激的局部场电位(LFP)反应。 LFP被转换为CSD信号,在每层内取平均值,每层产生一个CSD响应。为了估计所有皮质层之间连接的有效强度,将模型拟合到这些CSD信号。结果表明,有效相互作用的方式在很大程度上受到解剖连接强度方式的影响。但是,这两种模式并不相同。尽管根据连接强度的排名有所不同,但估计的受解剖约束的有效连接矩阵和解剖连接矩阵共享了六个最强连接中的五个。最强的有效连接是从第4层的兴奋性神经元到第2/3层的兴奋性神经元。我们的研究显示了估计皮质柱内解剖约束有效连通性的可行性,并表明解剖连通性对皮质层之间的有效连通性有很大影响。

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