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Molecular signatures of neural connectivity in the olfactory cortex

机译:嗅觉皮质中神经连接的分子标记

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The ability to target subclasses of neurons with defined connectivity is crucial for uncovering neural circuit functions. The olfactory (piriform) cortex is thought to generate odour percepts and memories, and odour information encoded in piriform is routed to target brain areas involved in multimodal sensory integration, cognition and motor control. However, it remains unknown if piriform outputs are spatially organized, and if distinct output channels are delineated by different gene expression patterns. Here we identify genes selectively expressed in different layers of the piriform cortex. Neural tracing experiments reveal that these layer-specific piriform genes mark different subclasses of neurons, which project to distinct target areas. Interestingly, these molecular signatures of connectivity are maintained in reeler mutant mice, in which neural positioning is scrambled. These results reveal that a predictive link between a neuron’s molecular identity and connectivity in this cortical circuit is determined independent of its spatial position.
机译:以已定义的连通性为目标的神经元子类的能力对于发现神经回路功能至关重要。嗅觉(梨状)皮层被认为会产生气味知觉和记忆,并且以梨状糖蛋白编码的气味信息会被路由到涉及多模式感觉整合,认知和运动控制的目标大脑区域。然而,尚不清楚梨状输出是否在空间上组织,以及不同的输出通道是否由不同的基因表达模式描绘。在这里,我们确定在梨状皮层的不同层中选择性表达的基因。神经追踪实验表明,这些特定于层的梨状花序基因标记了神经元的不同亚类,这些亚类投射到不同的目标区域。有趣的是,这些连接性的分子标记在reeler突变小鼠中得以维持,其中神经定位受到干扰。这些结果表明,在此皮层回路中,神经元的分子身份与连通性之间的预测联系是独立于其空间位置而确定的。

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