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Fine functional organization of auditory cortex revealed by Fourier optical imaging

机译:傅立叶光学成像显示听觉皮层的精细功能组织

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摘要

We provide an overall view of the functional tonotopic organization of the auditory cortex in the rat. We apply a recently developed technique for acquiring intrinsic signal optical maps, Fourier imaging, in the rat auditory cortex.,These highly detailed maps, derived in a several-minute-long recording procedure, delineate multiple auditory cortical areas and demonstrate their shapes, sizes, and tonotopic order. Beyond the primary auditory cortex, there are at least three distinct areas with fine-scale tonotopic organization, as well as at least one additional high-frequency field. The arrangement of all of these cortical areas is consistent across subjects. The accuracy of these optical maps was confirmed by microelectrode mapping in the same subjects. This imaging method allows fast mapping of the auditory cortex at high spatial resolution comparable to that provided by conventional microelectrode technique. Although spiking activity is largely responsible for the evoked intrinsic signals, certain features of the optical signal cannot be explained by spiking activity only, and should probably be attributed to other mechanisms: inducing metabolic activity, such as subthreshold membrane phenomena.
机译:我们提供了大鼠听觉皮层的功能性局部组织的整体视图。我们应用一种最新开发的技术来获取大鼠听觉皮层的内在信号光学图,傅里叶成像。这些高度详细的图以几分钟的记录过程得出,描绘了多个听觉皮层区域并展示了它们的形状,大小,以及色调顺序。除了主要的听觉皮层外,至少还有三个不同的区域,这些区域具有精细的色调组织,以及至少一个额外的高频场。所有这些皮质区域的布置在受试者之间是一致的。这些光学图的准确性已通过在同一受试者中的微电极测绘得到证实。这种成像方法可以与传统微电极技术相比,以高空间分辨率快速绘制听觉皮层。尽管加标活动主要是由诱发的内在信号引起的,但光信号的某些特征不能仅用加标活动来解释,而应该归因于其他机制:诱导代谢活动,例如阈下膜现象。

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