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Temporal production signals in parietal cortex.顶叶皮层中的时间产生信号。
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Hippocampal "time cells" bridge the gap in memory for discontiguous events.海马体“时间细胞”弥合了不连续事件记忆中的空白。
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Cell assembly sequences arising from spike threshold adaptation keep track of time in the hippocampus.由尖峰阈值适应产生的细胞集合序列在海马体中记录时间。
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A heterogeneous population code for elapsed time in rat medial agranular cortex.大鼠内侧无颗粒皮质中用于对消逝时间进行编码的异质性群体。
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Distinct roles of rodent orbitofrontal and medial prefrontal cortex in decision making.啮齿动物眶额皮质和内侧前额皮质在决策中的不同作用。
Neuron. 2010 May 13;66(3):449-60. doi: 10.1016/j.neuron.2010.03.033.
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Functional, but not anatomical, separation of "what" and "when" in prefrontal cortex.前额叶皮质中“什么”和“何时”的功能而非解剖学分离。
J Neurosci. 2010 Jan 6;30(1):350-60. doi: 10.1523/JNEUROSCI.3276-09.2010.
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Role of striatum in updating values of chosen actions.纹状体在更新所选动作价值中的作用。
J Neurosci. 2009 Nov 25;29(47):14701-12. doi: 10.1523/JNEUROSCI.2728-09.2009.
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Inactivation of medial prefrontal cortex impairs time interval discrimination in rats.内侧前额叶皮质失活会损害大鼠的时间间隔辨别能力。
Front Behav Neurosci. 2009 Nov 3;3:38. doi: 10.3389/neuro.08.038.2009. eCollection 2009.
10
Feature- and order-based timing representations in the frontal cortex.额叶皮质中基于特征和顺序的时间表征。
Neuron. 2009 Jul 30;63(2):254-66. doi: 10.1016/j.neuron.2009.06.018.

啮齿动物前额叶皮层中时间间隔的神经关联。

Neural correlates of interval timing in rodent prefrontal cortex.

机构信息

Department of Biological Sciences, Korea Advanced Institute of Science and Technology, Daejeon, Korea.

出版信息

J Neurosci. 2013 Aug 21;33(34):13834-47. doi: 10.1523/JNEUROSCI.1443-13.2013.

DOI:10.1523/JNEUROSCI.1443-13.2013
PMID:23966703
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6618661/
Abstract

Time interval estimation is involved in numerous behavioral processes, but its underlying neural mechanisms remain unclear. In particular, it has been controversial whether time is encoded on a linear or logarithmic scale. Based on our previous finding that inactivation of the medial prefrontal cortex (mPFC) profoundly impairs rat's ability to discriminate time intervals, we investigated how the mPFC processes temporal information by examining activity of mPFC neurons in rats performing a temporal bisection task. Many mPFC neurons conveyed temporal information based on monotonically changing activity profiles over time with negative accelerations, so that their activity profiles were better described by logarithmic than linear functions. Moreover, the precision of time-interval discrimination based on neural activity was lowered in proportion to the elapse of time, but without proportional increase in neural variability, which is well accounted for by logarithmic, but not by linear functions. As a population, mPFC neurons conveyed precise information about the elapse of time with their activity tightly correlated with the animal's choice of target. These results suggest that the mPFC might be part of an internal clock in charge of controlling interval-timing behavior, and that linearly changing neuronal activity on a logarithmic time scale might be one way of representing the elapse of time in the brain.

摘要

时间间隔估计涉及众多行为过程,但其潜在的神经机制尚不清楚。特别是,时间是否以线性或对数尺度编码一直存在争议。基于我们之前的发现,内侧前额叶皮层(mPFC)的失活会严重损害大鼠区分时间间隔的能力,我们通过检查大鼠在执行时间二分任务时 mPFC 神经元的活动,研究了 mPFC 如何处理时间信息。许多 mPFC 神经元根据时间上单调变化的活动模式传递时间信息,具有负加速度,因此它们的活动模式可以用对数函数而不是线性函数更好地描述。此外,基于神经活动的时间间隔辨别精度与时间的流逝成比例降低,但神经变异性没有成比例增加,对数函数可以很好地解释这一点,而线性函数则不能。作为一个群体,mPFC 神经元通过与动物选择目标紧密相关的活动来传递关于时间流逝的精确信息。这些结果表明,mPFC 可能是负责控制间隔计时行为的内部时钟的一部分,而对数时间尺度上线性变化的神经元活动可能是大脑中表示时间流逝的一种方式。