首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Commutative Properties of Head Direction Cells during Locomotion in 3D: Are All Routes Equal?
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Commutative Properties of Head Direction Cells during Locomotion in 3D: Are All Routes Equal?

机译:3D型机车机运动过程中的换向特性:所有路线都是平等的吗?

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Navigation often requires movement in three-dimensional (3D) space. Recent studies have postulated two different models for how head direction (HD) cells encode 3D space: the rotational plane hypothesis and the dual-axis model. To distinguish these models, we recorded HD cells in female rats while they traveled different routes along both horizontal and vertical surfaces from an elevated platform to the top of a cuboidal apparatus. We compared HD cell preferred firing directions (PFDs) in different planes and addressed the issue of whether HD cell firing is commutative- does the order of the animal's route affect the final outcome of the cell's PFD? Rats locomoted a direct or indirect route from the floor to the cube top via one, two, or three vertical walls. Whereas the rotational plane hypothesis accounted for PFD shifts when the animal traversed horizontal corners, the cell's PFD was better explained by the dual-axis model when the animal traversed vertical corners. Responses also followed the dual-axis model (1) under dark conditions, (2) for passive movement of the rat, (3) following apparatus rotation, (4) for movement around inside vertical corners, and (5) across a 45 degrees outside vertical corner. The order in which the animal traversed the different planes did not affect the outcome of the cell's PFD, indicating that responses were commutative. HD cell peak firing rates were generally equivalent along each surface. These findings indicate that the animal's orientation with respect to gravity plays an important role in determining a cell's PFD, and that vestibular and proprioceptive cues drive these computations.
机译:导航通常需要在三维(3D)空间中的移动。最近的研究已经假定了两种不同的模型,用于编码3D空间的头部方向(HD)单元:旋转平面假设和双轴模型。为了区分这些模型,我们在雌性大鼠中记录了HD细胞,同时它们沿水平和垂直表面从升高的平台到立方体设备的顶部行进不同的路线。我们将高清小区优选的烧制方向(PFDS)与不同的平面进行比较,并解决了HD Cell射击是否被换向的问题 - 动物的路线的顺序是否影响了细胞PFD的最终结果?大鼠通过一个,两个或三个垂直墙从地板上自动出来的直接或间接路线。虽然旋转平面假设占PFD当动物穿过水平角时的换档时,当动物穿过垂直角时,通过双轴模型更好地解释细胞的PFD。响应还遵循暗条件下的双轴模型(1),(2)对于大鼠的被动运动,(3)在装置旋转之后,(4)用于在垂直角内的运动,(5)跨越45度垂直角落外。遍布不同平面的动物的顺序不影响细胞PFD的结果,表明响应是换向的。 HD细胞峰烧制率通常沿着每个表面等同。这些发现表明,动物相对于重力的取向在确定细胞的PFD方面发挥着重要作用,并且前庭和预防性线索驱动这些计算。

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