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本文引用的文献

1
Path integration: how the head direction signal maintains and corrects spatial orientation.路径整合:头方向信号如何维持和修正空间方向。
Nat Neurosci. 2012 Oct;15(10):1445-53. doi: 10.1038/nn.3215. Epub 2012 Sep 16.
2
Attractor dynamics of spatially correlated neural activity in the limbic system.边缘系统中空间相关神经活动的吸引子动力学。
Annu Rev Neurosci. 2012;35:267-85. doi: 10.1146/annurev-neuro-062111-150351. Epub 2012 Mar 29.
3
Active and passive movement are encoded equally by head direction cells in the anterodorsal thalamus.前背侧丘脑的头方向细胞同等地编码主动运动和被动运动。
J Neurophysiol. 2011 Aug;106(2):788-800. doi: 10.1152/jn.01098.2010. Epub 2011 May 25.
4
Both visual and idiothetic cues contribute to head direction cell stability during navigation along complex routes.视觉和本体感觉线索都有助于在沿着复杂路线导航时保持头方向细胞的稳定性。
J Neurophysiol. 2011 Jun;105(6):2989-3001. doi: 10.1152/jn.01041.2010. Epub 2011 Mar 30.
5
Evidence that spatial memory deficits following bilateral vestibular deafferentation in rats are probably permanent.双侧前庭去传入大鼠的空间记忆缺陷可能是永久性的。
Neurobiol Learn Mem. 2010 Oct;94(3):402-13. doi: 10.1016/j.nlm.2010.08.007. Epub 2010 Aug 22.
6
Differentiating ascending vestibular pathways to the cortex involved in spatial cognition.区分参与空间认知的皮层上升前庭通路。
J Vestib Res. 2010;20(1):3-23. doi: 10.3233/VES-2010-0344.
7
Intracellular dynamics of hippocampal place cells during virtual navigation.虚拟导航过程中海马位置细胞的细胞内动力学
Nature. 2009 Oct 15;461(7266):941-6. doi: 10.1038/nature08499.
8
Persistent firing supported by an intrinsic cellular mechanism in a component of the head direction system.头部方向系统的一个组成部分中由内在细胞机制支持的持续放电。
J Neurosci. 2009 Apr 15;29(15):4945-52. doi: 10.1523/JNEUROSCI.5154-08.2009.
9
Lesions of the tegmentomammillary circuit in the head direction system disrupt the head direction signal in the anterior thalamus.头部方向系统中被盖乳头体回路的损伤会破坏丘脑前核中的头部方向信号。
J Neurosci. 2007 Jul 11;27(28):7564-77. doi: 10.1523/JNEUROSCI.0268-07.2007.
10
The head direction signal: origins and sensory-motor integration.头部方向信号:起源与感觉运动整合
Annu Rev Neurosci. 2007;30:181-207. doi: 10.1146/annurev.neuro.29.051605.112854.

自身运动改善了头方向细胞的调谐。

Self-motion improves head direction cell tuning.

机构信息

Department of Psychological and Brain Sciences, Dartmouth College, Hanover, New Hampshire.

Department of Psychological and Brain Sciences, Dartmouth College, Hanover, New Hampshire

出版信息

J Neurophysiol. 2014 Jun 15;111(12):2479-92. doi: 10.1152/jn.00512.2013. Epub 2014 Mar 26.

DOI:10.1152/jn.00512.2013
PMID:24671528
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4044432/
Abstract

Head direction (HD) cells respond when an animal faces a particular direction in the environment and form the basis for the animal's perceived directional heading. When an animal moves through its environment, accurate updating of the HD signal is required to reflect the current heading, but the cells still maintain a representation of HD even when the animal is motionless. This finding suggests that the HD system holds its current state in the absence of input, a view that we tested by rotating a head-restrained rat in the presence of a prominent visual landmark and then stopping it suddenly when facing the cell's preferred firing direction (PFD). Firing rates were unchanged for the first 100 ms, but then progressively decreased over the next 4 s and stabilized at ∼42% of their initial values. When the rat was stopped facing away from the PFD, there was no initial effect of braking, but the firing rate then increased steadily over 4 s and plateaued at ∼14% of its peak firing rate, substantially above initial background firing rates. In experiment 2, the rat was serially placed facing one of eight equidistant directions over 360° and held there for 30 s. Compared with the cell's peak firing rate during a passive rotation session, firing rates were reduced (51%) for in-PFD directions and increased (∼300%) from background levels for off-PFD directions, values comparable to those observed in the braking protocol. These differential HD cell responses demonstrate the importance of self-motion to the HD signal integrity.

摘要

头部方向 (HD) 细胞在动物面对环境中特定方向时做出反应,是动物感知方向的基础。当动物在环境中移动时,需要准确更新 HD 信号以反映当前的行进方向,但即使动物静止不动,细胞仍能保持对 HD 的表示。这一发现表明,HD 系统在没有输入的情况下保持其当前状态,我们通过在存在明显视觉地标物的情况下旋转头部受限的大鼠来检验这一观点,然后当大鼠面对细胞的首选放电方向 (PFD) 时突然停止。在最初的 100 毫秒内,放电率没有变化,但随后在接下来的 4 秒内逐渐下降,并稳定在初始值的约 42%。当大鼠停止面对 PFD 时,没有初始的制动效应,但随后在 4 秒内稳定增加,稳定在其峰值放电率的约 14%,远高于初始背景放电率。在实验 2 中,大鼠依次面对 360°范围内的 8 个等距方向中的一个,并在那里保持 30 秒。与被动旋转过程中细胞的峰值放电率相比,在 PFD 方向上的放电率降低(51%),而在 PFD 方向上的放电率从背景水平增加(约 300%),与制动方案中观察到的值相当。这些差异的 HD 细胞反应表明,自运动对 HD 信号完整性的重要性。