Modeling presynaptic inhibition by the amyloid precursor protein demonstrates one potential mechanism for preventing runaway synaptic modification in Alzheimer's disease

1Citations
Citations of this article
10Readers
Mendeley users who have this article in their library.

This article is free to access.

Abstract

INTRODUCTION: Previous simulations of Hebbian associative memory models inspired the malignant synaptic growth hypothesis of Alzheimer's disease (AD), which suggests that cognitive impairments arise due to runaway synaptic modification resulting from poor separation between encoding and retrieval. METHODS: We computationally model presynaptic inhibition by the recently identified interaction of soluble amyloid precursor protein alpha (sAPPα) with γ-aminobutyric acid type B receptor (GABABR) as one potential biological mechanism that can enhance separation between encoding and retrieval. RESULTS: Simulations predict that the dual effect of sAPPα on long-term potentiation and presynaptic inhibition of glutamatergic synapses maintains effective associative memory function and prevents runaway synaptic modification. Moreover, computational modeling predicts that sAPPα, which interacts with the 1a isoform of GABABR, is more effective than the GABABR agonist baclofen at stabilizing associative memory. DISCUSSION: Molecular mechanisms that enhance presynaptic inhibition, such as sAPPα-GABABR1a signaling, are potential therapeutic targets for preventing cognitive impairments in AD. Highlights: Computational modeling of Hebbian associative memory provides a framework for understanding the functional basis of Alzheimer's disease. Soluble amyloid precursor protein (sAPPα) presynaptic activation of γ-aminobutyric acid B (GABAB) receptors prevents runaway synaptic modification in associative memory models. sAPPα is more effective than baclofen at stabilizing associative memory.

Cite

CITATION STYLE

APA

Barber, D., Hasselmo, M. E., & Rice, H. C. (2025). Modeling presynaptic inhibition by the amyloid precursor protein demonstrates one potential mechanism for preventing runaway synaptic modification in Alzheimer’s disease. Alzheimer’s and Dementia, 21(10). https://doi.org/10.1002/alz.70748

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free