首页> 美国卫生研究院文献>The Journal of Neuroscience >Electrical and Network Neuronal Properties Are Preferentially Disrupted in Dorsal But Not Ventral Medial Entorhinal Cortex in a Mouse Model of Tauopathy
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Electrical and Network Neuronal Properties Are Preferentially Disrupted in Dorsal But Not Ventral Medial Entorhinal Cortex in a Mouse Model of Tauopathy

机译:电气和网络神经元的属性优先破坏在Tauopathy小鼠模型的背侧而不是腹侧内侧内嗅皮层。

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摘要

The entorhinal cortex (EC) is one of the first areas to be disrupted in neurodegenerative diseases such as Alzheimer's disease and frontotemporal dementia. The responsiveness of individual neurons to electrical and environmental stimuli varies along the dorsal–ventral axis of the medial EC (mEC) in a manner that suggests this topographical organization plays a key role in neural encoding of geometric space. We examined the cellular properties of layer II mEC stellate neurons (mEC-SCs) in rTg4510 mice, a rodent model of neurodegeneration. Dorsoventral gradients in certain intrinsic membrane properties, such as membrane capacitance and afterhyperpolarizations, were flattened in rTg4510 mEC-SCs, while other cellular gradients [e.g., input resistance (Ri), action potential properties] remained intact. Specifically, the intrinsic properties of rTg4510 mEC-SCs in dorsal aspects of the mEC were preferentially affected, such that action potential firing patterns in dorsal mEC-SCs were altered, while those in ventral mEC-SCs were unaffected. We also found that neuronal oscillations in the gamma frequency band (30–80 Hz) were preferentially disrupted in the dorsal mEC of rTg4510 slices, while those in ventral regions were comparatively preserved. These alterations corresponded to a flattened dorsoventral gradient in theta-gamma cross-frequency coupling of local field potentials recorded from the mEC of freely moving rTg4510 mice. These differences were not paralleled by changes to the dorsoventral gradient in parvalbumin staining or neurodegeneration. We propose that the selective disruption to dorsal mECs, and the resultant flattening of certain dorsoventral gradients, may contribute to disturbances in spatial information processing observed in this model of dementia.>SIGNIFICANCE STATEMENT The medial entorhinal cortex (mEC) plays a key role in spatial memory and is one of the first areas to express the pathological features of dementia. Neurons of the mEC are anatomically arranged to express functional dorsoventral gradients in a variety of neuronal properties, including grid cell firing field spacing, which is thought to encode geometric scale. We have investigated the effects of tau pathology on functional dorsoventral gradients in the mEC. Using electrophysiological approaches, we have shown that, in a transgenic mouse model of dementia, the functional properties of the dorsal mEC are preferentially disrupted, resulting in a flattening of some dorsoventral gradients. Our data suggest that neural signals arising in the mEC will have a reduced spatial content in dementia.
机译:内嗅皮层(EC)是神经退行性疾病(例如阿尔茨海默氏病和额颞痴呆)中最早被破坏的区域之一。单个神经元对电刺激和环境刺激的反应沿内侧EC(mEC)的背腹轴变化,这表明这种地形组织在几何空间的神经编码中起着关键作用。我们检查了rTg4510小鼠(神经变性的啮齿动物模型)中的第II层mEC星状神经元(mEC-SCs)的细胞特性。在rTg4510 mEC-SC中,某些固有膜特性(例如膜电容和超极化后)的背腹梯度平坦,而其他细胞梯度[例如,输入电阻(Ri),动作电位特性]则保持不变。具体而言,rTg4510 mEC-SC在mEC背面的内在特性会受到优先影响,从而改变了mEC-SC背面的动作电位触发方式,而腹侧mEC-SC的动作电位触发方式则不受影响。我们还发现,rTg4510切片的背侧mEC中,γ频带(30–80 Hz)中的神经元振荡优先受到破坏,而腹侧区域的神经元振荡则得到相对保留。这些变化对应于从自由移动的rTg4510小鼠的mEC记录的局部场电势的theta-gamma跨频耦合中的平坦的背腹梯度。这些差异与小白蛋白染色或神经退行性变的背腹梯度变化无可比拟。我们认为对背侧mEC的选择性破坏以及某些背腹梯度的平坦化可能导致这种痴呆模型中观察到的空间信息处理紊乱。>意义声明在空间记忆中起关键作用,并且是表达痴呆症病理特征的首批领域之一。 mEC的神经元在解剖上被布置为以各种神经元特性表达功能性腹背梯度,包括网格细胞激发场间隔,该间隔被认为可编码几何尺度。我们已经研究了tau病理对mEC中功能性背腹梯度的影响。使用电生理学方法,我们已经表明,在痴呆的转基因小鼠模型中,背侧mEC的功能特性会优先受到破坏,从而导致一些背腹梯度变平。我们的数据表明,在mEC中产生的神经信号在痴呆症中的空间含量会减少。

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