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Dynamic causal modeling for calcium imaging: Exploration of differential effective connectivity for sensory processing in a barrel cortical column

机译:钙成像动态因果型建模:枪管皮质柱中感觉处理差动有效连通性的探索

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摘要

Multi-photon calcium imaging (CaI) is an important tool to assess activities of neural populations within a column in the sensory cortex. However, the complex asymmetrical interactions among neural populations, termed effective connectivity, cannot be directly assessed by measuring the activity of each neuron or neural population using CaI but calls for computational modeling. To estimate effective connectivity among neural populations, we proposed a dynamic causal model (DCM) for CaI by combining a convolution-based dynamic neural state model and a dynamic calcium ion concentration model for CaI signals. After conducting a simulation study to evaluate DCM for CaI, we applied it to an experimental CaI signals measured at the layer 2/3 of a barrel cortical column that differentially responds to hit and error whisking trials in mice. We first identified neural populations and constructed computational models with intrinsic connectivity of neural populations within the layer 2/3 of the barrel cortex and extrinsic connectivity with latent external modes. Bayesian model inversion and comparison shows that interactions with latent inhibitory and excitatory external modes explain the observed CaI signals within the barrel cortical column better than any other tested models, with a single external mode or without any latent modes. The best model also showed differential intrinsic and extrinsic effective connectivity between hit and error trials in the functional hierarchy. Both simulation and experimental results suggest the usefulness of DCM for CaI in terms of exploration of hierarchical interactions among neural populations observed in CaI.
机译:多光子钙成像(CAI)是在感觉皮层的柱内评估神经元群的活动的重要工具。然而,神经元群中的复杂的非对称相互作用,称为有效连接,不能直接通过测量使用了Cal但对于计算建模调用每个神经元或神经群的活性来评估。为了估计神经元群之间的有效连接,我们通过组合基于卷积的动态神经状态模型和了Cal信号的动态钙离子浓度模型提出了彩以动态因果模型(DCM)。在进行模拟研究,以评估DCM为了Cal后,我们将其运用到每桶皮质列差异响应命中和错误小鼠搅打试验的层2/3测量的实验了Cal信号。我们首先确定神经元群,并与桶状皮层和外部连接与潜在外部模式的2/3层内的神经元群的内在连接构造的计算模型。贝叶斯模型反演和比较表明,与潜抑制和兴奋外部模式相互作用解释筒皮质列内所观察到的信号了Cal比任何其它测试的模型更好的,具有单个外部模式或没有任何潜在模式。最好的模型也显示在功能层次命中和错误的审判之间的差异的内在和外在的有效连接。仿真及试验结果表明,在蔡观察到神经元群之间的相互作用层次的探索方面DCM对蔡的实用性。

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