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Inferring circuit mechanisms from sparse neural recording and global perturbation in grid cells

机译:从稀疏神经记录和网格单元中的整体扰动推断电路机制

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A goal of systems neuroscience is to discover the circuit mechanisms underlying brain function. Despite experimental advances that enable circuit-wide neural recording, the problem remains open in part because solving the ‘inverse problem’ of inferring circuity and mechanism by merely observing activity is hard. In the grid cell system, we show through modeling that a technique based on global circuit perturbation and examination of a novel theoretical object called the distribution of relative phase shifts (DRPS) could reveal the mechanisms of a cortical circuit at unprecedented detail using extremely sparse neural recordings. We establish feasibility, showing that the method can discriminate between recurrent versus feedforward mechanisms and amongst various recurrent mechanisms using recordings from a handful of cells. The proposed strategy demonstrates that sparse recording coupled with simple perturbation can reveal more about circuit mechanism than can full knowledge of network activity or the synaptic connectivity matrix.
机译:系统神经科学的目标是发现脑功能的电路机制。尽管在实验方面取得了进展,可以进行全电路的神经记录,但问题仍然存在,部分原因是仅通过观察活动来解决推断电路和机制的“反问题”是很困难的。在网格单元系统中,我们通过建模表明,基于全局电路扰动和检查一种新颖的理论对象(称为相对相移分布(DRPS))的技术可以使用极为稀疏的神经以前所未有的细节揭示皮质电路的机制。录音。我们建立了可行性,表明该方法可以区分递归机制与前馈机制,以及使用来自少数细胞的记录来区分各种递归机制。所提出的策略表明,与完全了解网络活动或突触连接矩阵相比,稀疏记录加上简单的摄动可以揭示更多有关电路机制的信息。

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