Modelling the contributions to hyperexcitability in a mouse model of Alzheimer's disease

被引:4
|
作者
Mittag, Martin [1 ]
Mediavilla, Laura [1 ,2 ,3 ,4 ]
Remy, Stefan [5 ,6 ,7 ]
Cuntz, Hermann [4 ]
Jedlicka, Peter [1 ,8 ]
机构
[1] Justus Liebig Univ Giessen, Interdisciplinary Ctr Anim Res 3Rs, ICAR3R, Giessen, Germany
[2] Univ Bristol, Sch Physiol Pharmacol & Neurosci, Bristol, England
[3] Frankfurt Inst Adv Studies, Frankfurt, Germany
[4] Ernst Strungmann Inst ESI Neurosci Cooperat Max Pl, Frankfurt, Germany
[5] Leibniz Inst Neurobiol, Magdeburg, Germany
[6] German Ctr Neurodegenerat Dis, Magdeburg, Germany
[7] Ctr Behav Brain Sci CBBS, Magdeburg, Germany
[8] Goethe Univ, Inst Clin Neuroanat, Neurosci Ctr, Frankfurt, Germany
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2023年 / 601卷 / 15期
关键词
degeneracy; dendritic constancy; hippocampus; morphological modelling; multi-causal pathogenesis; CA1 PYRAMIDAL NEURONS; AXON INITIAL SEGMENT; SUBCLINICAL EPILEPTIFORM ACTIVITY; ACTIVATED POTASSIUM CHANNEL; LATERAL ENTORHINAL CORTEX; AMYLOID-BETA; DENDRITIC SPINES; K+ CURRENT; SYNAPTIC PLASTICITY; COGNITIVE IMPAIRMENTS;
D O I
10.1113/JP283401
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Neuronal hyperexcitability is a pathological characteristic of Alzheimer's disease (AD). Three main mechanisms have been proposed to explain it: (i) dendritic degeneration leading to increased input resistance, (ii) ion channel changes leading to enhanced intrinsic excitability, and (iii) synaptic changes leading to excitation-inhibition (E/I) imbalance. However, the relative contribution of these mechanisms is not fully understood. Therefore, we performed biophysically realistic multi-compartmental modelling of neuronal excitability in reconstructed CA1 pyramidal neurons from wild-type and APP/PS1 mice, a well-established animal model of AD. We show that, for synaptic activation, the excitability-promoting effects of dendritic degeneration are cancelled out by decreased excitation due to synaptic loss. We find an interesting balance between excitability regulation and an enhanced degeneration in the basal dendrites of APP/PS1 cells, potentially leading to increased excitation by the apical but decreased excitation by the basal Schaffer collateral pathway. Furthermore, our simulations reveal three pathomechanistic scenarios that can account for the experimentally observed increase in firing and bursting of CA1 pyramidal neurons in APP/PS1 mice: scenario 1: enhanced E/I ratio; scenario 2: alteration of intrinsic ion channels (I-AHP down-regulated; I-Nap, I-Na and I-CaT up-regulated) in addition to enhanced E/I ratio; and scenario 3: increased excitatory burst input. Our work supports the hypothesis that pathological network and ion channel changes are major contributors to neuronal hyperexcitability in AD. Overall, our results are in line with the concept of multi-causality according to which multiple different disruptions are separately sufficient but no single particular disruption is necessary for neuronal hyperexcitability.
引用
收藏
页码:3403 / 3437
页数:35
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