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首页> 外文期刊>Journal of Neurophysiology >Hebbian analysis of the transformation of medial entorhinal grid-cell inputs to hippocampal place fields.
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Hebbian analysis of the transformation of medial entorhinal grid-cell inputs to hippocampal place fields.

机译:关于内侧内脏网格细胞输入向海马体位域转化的Hebbian分析。

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The discovery of grid cells in the medial entorhinal cortex (MEC) permits the characterization of hippocampal computation in much greater detail than previously possible. The present study addresses how an integrate-and-fire unit driven by grid-cell spike trains may transform the multipeaked, spatial firing pattern of grid cells into the single-peaked activity that is typical of hippocampal place cells. Previous studies have shown that in the absence of network interactions, this transformation can succeed only if the place cell receives inputs from grids with overlapping vertices at the location of the place cell's firing field. In our simulations, the selection of these inputs was accomplished by fast Hebbian plasticity alone. The resulting nonlinear process was acutely sensitive to small input variations. Simulations differing only in the exact spike timing of grid cells produced different field locations for the same place cells. Place fields became concentrated in areas that correlated with the initial trajectory of the animal; the introduction of feedback inhibitory cells reduced this bias. These results suggest distinct roles for plasticity of the perforant path synapses and for competition via feedback inhibition in the formation of place fields in a novel environment. Furthermore, they imply that variability in MEC spiking patterns or in the rat's trajectory is sufficient for generating a distinct population code in a novel environment and suggest that recalling this code in a familiar environment involves additional inputs and/or a different mode of operation of the network.
机译:在内侧内嗅皮层(MEC)中发现网格细胞可以比以前更详细地表征海马计算。本研究解决了由网格单元尖峰序列驱动的整合并发射单元如何将网格单元的多峰,空间发射模式转变为海马地方细胞典型的单峰活动。先前的研究表明,在没有网络交互的情况下,仅当位置单元从位置单元发射场位置处具有重叠顶点的网格接收输入时,此转换才能成功。在我们的模拟中,仅通过快速的Hebbian可塑性来完成对这些输入的选择。由此产生的非线性过程对较小的输入变化极为敏感。仅在网格单元的精确尖峰定时方面不同的模拟对于相同的位置单元产生了不同的场位置。位置场集中在与动物初始轨迹相关的区域;反馈抑制细胞的引入减少了这种偏见。这些结果表明,在新型环境中,穿孔路径突触的可塑性和通过反馈抑制产生竞争的独特作用。此外,它们暗示MEC尖峰模式或大鼠轨迹的可变性足以在新颖的环境中生成不同的种群代码,并建议在熟悉的环境中调用此代码涉及额外的输入和/或不同的操作模式。网络。

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