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Neurogenesis Drives Stimulus Decorrelation in a Model of the Olfactory Bulb

机译:神经发生驱动嗅球模型中的刺激去相关。

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摘要

The reshaping and decorrelation of similar activity patterns by neuronal networks can enhance their discriminability, storage, and retrieval. How can such networks learn to decorrelate new complex patterns, as they arise in the olfactory system? Using a computational network model for the dominant neural populations of the olfactory bulb we show that fundamental aspects of the adult neurogenesis observed in the olfactory bulb – the persistent addition of new inhibitory granule cells to the network, their activity-dependent survival, and the reciprocal character of their synapses with the principal mitral cells – are sufficient to restructure the network and to alter its encoding of odor stimuli adaptively so as to reduce the correlations between the bulbar representations of similar stimuli. The decorrelation is quite robust with respect to various types of perturbations of the reciprocity. The model parsimoniously captures the experimentally observed role of neurogenesis in perceptual learning and the enhanced response of young granule cells to novel stimuli. Moreover, it makes specific predictions for the type of odor enrichment that should be effective in enhancing the ability of animals to discriminate similar odor mixtures.
机译:神经网络对类似活动模式的重塑和去相关可以增强其可辨性,存储和检索。当嗅觉系统中出现新的复杂模式时,这些网络如何学习去相关?使用针对嗅球的优势神经群体的计算机网络模型,我们显示了嗅球中观察到的成年神经发生的基本方面–向网络中不断添加新的抑制性颗粒细胞,它们的活动依赖性生存以及相互的它们的突触与二尖瓣主要细胞的特征–足以重构网络并自适应地改变其对气味刺激的编码,从而减少相似刺激的延髓表现之间的相关性。关于互易的各种类型的扰动,去相关非常鲁棒。该模型简约地捕获了实验观察到的神经发生在知觉学习中的作用以及年轻颗粒细胞对新刺激的增强反应。此外,它对气味增强的类型做出了具体的预测,这些预测应有效增强动物辨别相似气味混合物的能力。

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