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Updated: Dec 11, 2025

Evaluation of Synapse Density in Hippocampal Rodent Brain Slices
Published on: October 6, 2017
The two faces of synaptic failure in AppNL-G-F knock-in mice
Amira Latif-Hernandez1,2, Victor Sabanov1,3, Tariq Ahmed1,4
1Brain and Cognition, KU Leuven, Tiensestraat 102, Box 3714, 3000, Leuven, Belgium.
Background:
Intensive basic and preclinical research into Alzheimer's disease (AD) has yielded important new findings, but they could not yet been translated into effective therapies. One of the reasons is the lack of animal models that sufficiently reproduce the complexity of human AD and the response of human brain circuits to novel treatment approaches. As a step in overcoming these limitations, new App knock-in models have been developed that avoid transgenic APP overexpression and its associated side effects. These mice are proposed to serve as valuable models to examine Aß-related pathology in "preclinical AD."
Methods:
Since AD as the most common form of dementia progresses into synaptic failure as a major cause of cognitive deficits, the detailed characterization of synaptic dysfunction in these new models is essential. Here, we addressed this by extracellular and whole-cell patch-clamp recordings in AppNL-G-F mice compared to AppNL animals which served as controls.
Results:
We found a beginning synaptic impairment (LTP deficit) at 3-4 months in the prefrontal cortex of AppNL-G-F mice that is further aggravated and extended to the hippocampus at 6-8 months. Measurements of miniature EPSCs and IPSCs point to a marked increase in excitatory and inhibitory presynaptic activity, the latter accompanied by a moderate increase in postsynaptic inhibitory function.
Conclusions:
Our data reveal a marked impairment of primarily postsynaptic processes at the level of synaptic plasticity but the dominance of a presumably compensatory presynaptic upregulation at the level of elementary miniature synaptic function.
Insights
New Alzheimer's disease (AD) mouse models show early synaptic impairment, specifically in long-term potentiation (LTP), and altered presynaptic activity, offering insights into preclinical AD.
Area of Science:
- Neuroscience
- Neurodegenerative Diseases
- Molecular Biology
Background:
- Despite extensive Alzheimer's disease (AD) research, effective therapies remain elusive due to limitations in current animal models.
- Novel App knock-in mouse models are being developed to better replicate human AD pathology and treatment responses, avoiding issues like APP overexpression.
Purpose of the Study:
- To characterize synaptic dysfunction in AppNL-G-F mice, a new model for preclinical Alzheimer's disease.
- To assess synaptic changes related to cognitive deficits in Alzheimer's disease progression.
Main Methods:
- Extracellular and whole-cell patch-clamp recordings were performed in AppNL-G-F mice and control AppNL mice.
- Electrophysiological recordings analyzed synaptic function, including long-term potentiation (LTP) deficits and miniature excitatory and inhibitory postsynaptic currents (mEPSCs/IPSCs).
Main Results:
- A deficit in long-term potentiation (LTP) was observed in the prefrontal cortex of AppNL-G-F mice by 3-4 months, worsening and extending to the hippocampus by 6-8 months.
- Increased excitatory and inhibitory presynaptic activity (mEPSCs/IPSCs) was detected, alongside moderate increases in postsynaptic inhibitory function.
Conclusions:
- AppNL-G-F mice exhibit significant postsynaptic impairments in synaptic plasticity.
- A compensatory upregulation of presynaptic activity in elementary synaptic function is suggested in these preclinical Alzheimer's disease models.
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