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人类内嗅皮层中空间边界的电生理特征。

Electrophysiological Signatures of Spatial Boundaries in the Human Subiculum.

机构信息

Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Korea,

Department of Biomedical Engineering, Columbia University, New York, New York 10027.

出版信息

J Neurosci. 2018 Mar 28;38(13):3265-3272. doi: 10.1523/JNEUROSCI.3216-17.2018. Epub 2018 Feb 21.

Abstract

Environmental boundaries play a crucial role in spatial navigation and memory across a wide range of distantly related species. In rodents, boundary representations have been identified at the single-cell level in the subiculum and entorhinal cortex of the hippocampal formation. Although studies of hippocampal function and spatial behavior suggest that similar representations might exist in humans, boundary-related neural activity has not been identified electrophysiologically in humans until now. To address this gap in the literature, we analyzed intracranial recordings from the hippocampal formation of surgical epilepsy patients (of both sexes) while they performed a virtual spatial navigation task and compared the power in three frequency bands (1-4, 4-10, and 30-90 Hz) for target locations near and far from the environmental boundaries. Our results suggest that encoding locations near boundaries elicited stronger theta oscillations than for target locations near the center of the environment and that this difference cannot be explained by variables such as trial length, speed, movement, or performance. These findings provide direct evidence of boundary-dependent neural activity localized in humans to the subiculum, the homolog of the hippocampal subregion in which most boundary cells are found in rodents, and indicate that this system can represent attended locations that rather than the position of one's own body. Spatial computations using environmental boundaries are an integral part of the brain's spatial mapping system. In rodents, border/boundary cells in the subiculum and entorhinal cortex reveal boundary coding at the single-neuron level. Although there is good reason to believe that such representations also exist in humans, the evidence has thus far been limited to functional neuroimaging studies that broadly implicate the hippocampus in boundary-based navigation. By combining intracranial recordings with high-resolution imaging of hippocampal subregions, we identified a neural marker of boundary representation in the human subiculum.

摘要

环境边界在广泛的远缘物种的空间导航和记忆中起着至关重要的作用。在啮齿动物中,边界表示已在海马结构的下托和内嗅皮层的单细胞水平上确定。尽管对海马功能和空间行为的研究表明,类似的表示可能存在于人类中,但直到现在,在人类中还没有用电生理方法确定与边界相关的神经活动。为了解决文献中的这一空白,我们分析了接受手术治疗癫痫的患者(男女均有)的海马区颅内记录,这些患者在执行虚拟空间导航任务时,比较了目标位置接近和远离环境边界的三个频带(1-4、4-10 和 30-90 Hz)的功率。我们的研究结果表明,与接近环境中心的目标位置相比,编码接近边界的位置会引起更强的 theta 振荡,而这种差异不能用试验长度、速度、运动或表现等变量来解释。这些发现为边界依赖的神经活动提供了直接证据,这些活动定位于人类的下托,下托是啮齿动物中大多数边界细胞所在的海马亚区的同源物,表明该系统可以表示注意到的位置,而不是一个人自己身体的位置。使用环境边界进行的空间计算是大脑空间映射系统的一个组成部分。在啮齿动物中,下托和内嗅皮层中的边界/边界细胞在单细胞水平上揭示了边界编码。尽管有充分的理由相信这种表示也存在于人类中,但到目前为止,证据仅限于广泛暗示海马体参与边界导航的功能神经影像学研究。通过将颅内记录与海马亚区的高分辨率成像相结合,我们在人类下托中确定了边界表示的神经标记。

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