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Delineating and testing a microcircuit model of parahippocampal phase precession

Delineating and testing a microcircuit model of parahippocampal phase precession
描绘和测试海马旁相位进动的微电路模型
批准号:
322164732
负责人:
Professor Dr. Michael Brecht
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2016
资助国家:
德国
项目状态:
已结题
起止时间:
2015-12-31 至 2020-12-31

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中文摘要
翻译
在整个海马结构中,位置或网状细胞的放电活动与脑电的theta节律(~8赫兹)有关:当动物进入细胞的S发射场时,第一个尖峰到达theta振荡的后期阶段。当动物穿过能量场时,随后的theta振荡周期中的尖峰出现在越来越早的阶段。道钉“行进”遍及整个场地。相位进动是系统神经科学中研究最多的主题之一,它可能有助于将发生在几秒或更长时间内的行为学习的时间尺度与突触可塑性的时间尺度相匹配,突触可塑性的时间尺度通常在毫秒范围内。前人对相位进动的研究丰富了对神经元时间放电现象的描述,并建立了大量的相位进动模型。然而,位相进动背后的机制(S)仍然是未知的。我们将试图通过分析内嗅皮层的第三层来解决这个问题,在那里神经元显示出显著的相位进动。以前解释相位进动的尝试遇到了四个相互交织的问题:(1)相位进动模型通常是欠约束的,(2)大多数研究没有制定精确的微电路模型,(3)模型因此不是很强的预测性,(4)模型通常不被测试,即它们在实验上是无关紧要的。我们研究联盟的独特组成和互补的专业知识将使我们能够克服这些问题:(I)连通性分析和高分辨率记录将以前所未有的精度描绘内嗅觉微电路。(Ii)这些数据将被输入到一个具有很强预测性的微电路模型中。(Iii)因此,该模型可以在体外和体内进行测试。我们的方法将使我们能够选择性地干扰位相进动,并测试其在空间记忆形成中的作用。
英文摘要
Throughout the hippocampal formation, the firing activity of place or grid cells and the EEG theta rhythm (~8Hz) are related: When an animal enters a cell´s firing field, the first spikes arrive at a late phase of the theta oscillation. As the animal traverses the field, the spikes in subsequent cycles of the theta oscillation arrive at earlier and earlier phases. Spikes "precess" throughout the place field. Phase precession is one of the most investigated topics in systems neuroscience and might be instrumental in matching the time scale of behavioral learning, which occurs in the range of seconds or more, to the time scales of synaptic plasticity, which are often in the range of milliseconds. Previous research on phase precession resulted in a rich description of the temporal discharge phenomenology of neurons and in numerous models of phase precession. Still the mechanism(s) underlying phase precession are unknown. We will try to solve this problem by analyzing layer 3 of the entorhinal cortex, where neurons show prominent phase precession. Previous attempts to explain phase precession suffered from four intertwined problems: (1) phase precession models are typically underconstrained, (2) most studies do not formulate precise microcircuit models, (3) models are therefore not strongly predictive, (4) models are typically not tested, i.e. they are experimentally inconsequential. The unique composition and the complementary expertise of our research consortium will allow us to overcome these problems: (i) Connectivity analysis and high-resolution recordings will delineate entorhinal microcircuits with unprecedented precision. (ii) These data will be funneled into a strongly predictive microcircuit model. (iii) Accordingly, this model can be tested in vitro and in vivo. Our approach will enable us to selectively interfere with phase precession and test its role in spatial memory formation.
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