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一种计算网格到放置细胞转换模型表明,在早期阿尔茨海默病中,突触驱动可能导致放置细胞损伤。

A computational grid-to-place-cell transformation model indicates a synaptic driver of place cell impairment in early-stage Alzheimer's Disease.

机构信息

Centre for Neurotechnology and Department of Bioengineering, Imperial College London, London, United Kingdom.

出版信息

PLoS Comput Biol. 2021 Jun 16;17(6):e1009115. doi: 10.1371/journal.pcbi.1009115. eCollection 2021 Jun.


DOI:10.1371/journal.pcbi.1009115
PMID:34133417
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8238223/
Abstract

Alzheimer's Disease (AD) is characterized by progressive neurodegeneration and cognitive impairment. Synaptic dysfunction is an established early symptom, which correlates strongly with cognitive decline, and is hypothesised to mediate the diverse neuronal network abnormalities observed in AD. However, how synaptic dysfunction contributes to network pathology and cognitive impairment in AD remains elusive. Here, we present a grid-cell-to-place-cell transformation model of long-term CA1 place cell dynamics to interrogate the effect of synaptic loss on network function and environmental representation. Synapse loss modelled after experimental observations in the APP/PS1 mouse model was found to induce firing rate alterations and place cell abnormalities that have previously been observed in AD mouse models, including enlarged place fields and lower across-session stability of place fields. Our results support the hypothesis that synaptic dysfunction underlies cognitive deficits, and demonstrate how impaired environmental representation may arise in the early stages of AD. We further propose that dysfunction of excitatory and inhibitory inputs to CA1 pyramidal cells may cause distinct impairments in place cell function, namely reduced stability and place map resolution.

摘要

阿尔茨海默病(AD)的特征是进行性神经退行性变和认知障碍。突触功能障碍是一种既定的早期症状,与认知能力下降密切相关,并且据推测介导了 AD 中观察到的不同神经元网络异常。然而,突触功能障碍如何导致 AD 中的网络病理学和认知障碍仍然难以捉摸。在这里,我们提出了一个网格细胞到位置细胞的长期 CA1 位置细胞动力学转换模型,以研究突触损失对网络功能和环境表示的影响。根据 APP/PS1 小鼠模型中的实验观察结果模拟的突触损失导致了以前在 AD 小鼠模型中观察到的放电率改变和位置细胞异常,包括扩大的位置场和位置场在整个会话中的稳定性降低。我们的结果支持突触功能障碍是认知缺陷的基础这一假说,并表明在 AD 的早期阶段,环境表示可能如何出现障碍。我们进一步提出,CA1 锥体神经元的兴奋性和抑制性输入的功能障碍可能导致位置细胞功能的不同损伤,即稳定性降低和位置图分辨率降低。

相似文献

[1]
A computational grid-to-place-cell transformation model indicates a synaptic driver of place cell impairment in early-stage Alzheimer's Disease.

PLoS Comput Biol. 2021-6

[2]
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[3]
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[5]
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[6]
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[7]
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[8]
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[9]
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[10]
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引用本文的文献

[1]
Grid cell modules coordination improves accuracy and reliability for spatial navigation.

Cogn Neurodyn. 2025-12

[2]
Altered synaptic plasticity at hippocampal CA1-CA3 synapses in Alzheimer's disease: integration of amyloid precursor protein intracellular domain and amyloid beta effects into computational models.

Front Comput Neurosci. 2023-12-7

本文引用的文献

[1]
Long-term dynamics of aberrant neuronal activity in awake Alzheimer's disease transgenic mice.

Commun Biol. 2021-12-7

[2]
Place Cells in Head-Fixed Mice Navigating a Floating Real-World Environment.

Front Cell Neurosci. 2021-2-12

[3]
Disrupted Place Cell Remapping and Impaired Grid Cells in a Knockin Model of Alzheimer's Disease.

Neuron. 2020-7-21

[4]
Loss of Hippocampal Calretinin and Parvalbumin Interneurons in the 5XFAD Mouse Model of Alzheimer's Disease.

ASN Neuro. 2020

[5]
SEQUIN Multiscale Imaging of Mammalian Central Synapses Reveals Loss of Synaptic Connectivity Resulting from Diffuse Traumatic Brain Injury.

Neuron. 2020-5-8

[6]
Transplantation of GABAergic Interneuron Progenitor Attenuates Cognitive Deficits of Alzheimer's Disease Model Mice.

J Alzheimers Dis. 2020

[7]
Altered dorsal CA1 neuronal population coding in the APP/PS1 mouse model of Alzheimer's disease.

Sci Rep. 2020-1-23

[8]
Spatiotemporally random and diverse grid cell spike patterns contribute to the transformation of grid cell to place cell in a neural network model.

PLoS One. 2019-11-14

[9]
The basis of cellular and regional vulnerability in Alzheimer's disease.

Acta Neuropathol. 2019-8-7

[10]
Stable memory and computation in randomly rewiring neural networks.

J Neurophysiol. 2019-4-10

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