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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Differential recruitment of the hippocampus, medial prefrontal cortex, and the human motion complex during path integration in humans.
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Differential recruitment of the hippocampus, medial prefrontal cortex, and the human motion complex during path integration in humans.

机译:在人类的路径整合过程中,海马,内侧前额叶皮层和人类运动复合体的差异募集。

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摘要

Path integration, the ability to sense self-motion for keeping track of changes in orientation and position, constitutes a fundamental mechanism of spatial navigation and a keystone for the development of cognitive maps. Whereas animal path integration is predominantly supported by the head-direction, grid, and place cell systems, the neural foundations are not well understood in humans. Here we used functional magnetic resonance imaging and a virtual rendition of a triangle completion paradigm to test whether human path integration recruits a cortical system similar to that of rodents and nonhuman primates. Participants traveled along two legs of a triangle before pointing toward the starting location. In accordance with animal models, stronger right hippocampal activation predicted more accurate updating of the starting location on a trial-by-trial basis. Moreover, between-subjects fluctuations in response consistency were negatively correlated with bilateral hippocampal and medial prefrontal activation, and bilateral recruitment of the human motion complex (hMT+) covaried with individual path integration capability. Given that these effects were absent in a perceptual control task, the present study provides the first evidence that visual path integration is related to the dynamic interplay of self-motion processing in hMT+, higher-level spatial processes in the hippocampus, and spatial working memory in medial prefrontal cortex.
机译:路径整合是感知自我运动以跟踪方向和位置变化的能力,是空间导航的基本机制,也是认知地图发展的基石。尽管动物路径整合主要受头部,网格和位置细胞系统的支持,但人类对神经基础的了解还很少。在这里,我们使用功能磁共振成像和三角形完成范例的虚拟表示法来测试人类路径整合是否招募了类似于啮齿动物和非人类灵长类动物的皮质系统。参与者沿着三角形的两条腿行走,然后指向起点。根据动物模型,在每次试验的基础上,更强的右海马激活预示了起始位置的更准确更新。此外,受试者之间反应一致性的波动与双侧海马和内侧前额叶激活呈负相关,而人体运动复合物(hMT +)的双侧募集与个体路径整合能力相关。鉴于这些作用在知觉控制任务中是不存在的,因此本研究提供了第一个证据,表明视觉路径整合与hMT +中自我运动过程,海马中较高水平的空间过程和空间工作记忆的动态相互作用有关在内侧额叶皮层

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