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内嗅皮层中三维空间的局部有序表示。

Locally ordered representation of 3D space in the entorhinal cortex.

机构信息

Department of Neurobiology, Weizmann Institute of Science, Rehovot, Israel.

Department of Bioengineering, Imperial College London, London, UK.

出版信息

Nature. 2021 Aug;596(7872):404-409. doi: 10.1038/s41586-021-03783-x. Epub 2021 Aug 11.

Abstract

As animals navigate on a two-dimensional surface, neurons in the medial entorhinal cortex (MEC) known as grid cells are activated when the animal passes through multiple locations (firing fields) arranged in a hexagonal lattice that tiles the locomotion surface. However, although our world is three-dimensional, it is unclear how the MEC represents 3D space. Here we recorded from MEC cells in freely flying bats and identified several classes of spatial neurons, including 3D border cells, 3D head-direction cells, and neurons with multiple 3D firing fields. Many of these multifield neurons were 3D grid cells, whose neighbouring fields were separated by a characteristic distance-forming a local order-but lacked any global lattice arrangement of the fields. Thus, whereas 2D grid cells form a global lattice-characterized by both local and global order-3D grid cells exhibited only local order, creating a locally ordered metric for space. We modelled grid cells as emerging from pairwise interactions between fields, which yielded a hexagonal lattice in 2D and local order in 3D, thereby describing both 2D and 3D grid cells using one unifying model. Together, these data and model illuminate the fundamental differences and similarities between neural codes for 3D and 2D space in the mammalian brain.

摘要

当动物在二维表面上导航时,位于内侧缰状回(MEC)中的网格细胞在动物穿过以六边形晶格排列、覆盖运动表面的多个位置(发射场)时被激活。然而,尽管我们的世界是三维的,但 MEC 如何表示 3D 空间还不清楚。在这里,我们记录了自由飞行蝙蝠的 MEC 细胞,并鉴定了几类空间神经元,包括 3D 边界细胞、3D 头方向细胞和具有多个 3D 发射场的神经元。这些多场神经元中的许多是 3D 网格细胞,其相邻场由特征距离分隔——形成局部有序性——但缺乏场的任何全局晶格排列。因此,尽管 2D 网格细胞形成了一个以局部和全局有序性为特征的全局晶格,但 3D 网格细胞仅表现出局部有序性,为空间创造了一个局部有序的度量。我们将网格细胞建模为场之间的成对相互作用而产生,在 2D 中产生六边形晶格,在 3D 中产生局部有序性,从而使用一个统一的模型描述 2D 和 3D 网格细胞。这些数据和模型一起阐明了哺乳动物大脑中 3D 和 2D 空间神经编码之间的基本差异和相似之处。

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