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April 5, 2026Nature Aging2 citationsOpen Access

Neuronal APOE4-induced early hippocampal network hyperexcitability in Alzheimer’s disease pathogenesis

DTDennis R. TabuenaSJSung-Soo JangBGBrian P. Grone

Key Points

  • This research aims to clarify how APOE4 influences neuronal and network activity during early stages of Alzheimer’s disease.
  • Utilized young APOE4 knockin (E4-KI) mice to study hippocampal network function.
  • Applied single-nucleus RNA sequencing to analyze gene expression changes.
  • Conducted targeted CRISPR interference knockdown of Nell2 to assess its impact on excitability.
  • E4-KI mice exhibited specific hippocampal network hyperexcitability linked to cognitive deficits.
  • Identified smaller, hyperexcitable neuron subpopulations contributing to early impairment.
  • Nell2 was found to mediate early neuronal hyperexcitability, with knockdown restoring normal function.

Abstract

Abstract The full impact of APOE4 (apolipoprotein E4), the strongest genetic risk factor for Alzheimer’s disease (AD), on neuronal and network function remains unclear, particularly during early preclinical stages of disease. Here we show that young APOE4 knockin (E4-KI) mice exhibit hippocampal region-specific network hyperexcitability that predicts later cognitive deficits. This early phenotype arises from cell-type-specific subpopulations of smaller, hyperexcitable neurons and is eliminated by selective removal of neuronal APOE4 . With aging, E4-KI mice develop granule cell hyperexcitability, progressive inhibitory dysfunction and excitation–inhibition imbalance in the dentate gyrus. Single-nucleus RNA sequencing with multilevel gene filtering reveals age-dependent and cell-type-specific transcriptional changes and identifies candidate mediators of early neuronal hyperexcitability, including Nell2. Targeted CRISPR interference knockdown of Nell2 rescues abnormal excitability, implicating Nell2 as a contributor to APOE4-driven dysfunction. Together, these findings define molecular and circuit mechanisms linking neuronal APOE4-induced early network impairment to AD pathogenesis with aging.

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Cite This Study

Tabuena et al. (2026) studied this question.

synapsesocial.com/papers/69d1fceba79560c99a0a2ae1https://doi.org/10.1038/s43587-026-01096-0
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