Sep 2026· Biological and Pharmaceutical Bulletin· Vol 49 9, pp.
1409-1415
· 0 citations
Medicine
TL;DR
Examination of microglial gene expression in the brains of AppNL-F knock-in mice reveals a stepwise mode of microglial gene activation under slow amyloid progression and identifies novel genes that may be relevant to the early stages of Alzheimer's disease.
Abstract
The mechanistic role of microglial activation in Alzheimer's disease pathology is typically investigated using mouse models with aggressive amyloid accumulation, leaving the dynamics of microglial responses under the relatively slow deposition of amyloid-β (Aβ) characteristic of the early stages of the disease poorly understood. In this study, we examined microglial gene expression in the brains of AppNL-F knock-in mice, which gradually develop Aβ pathology in an aging-dependent manner without amyloid-β precursor protein overexpression. Quantitative PCR (qPCR) analysis revealed that microglial gene expression presents a stepwise activation pattern: early-induced genes increased at 12 months, whereas late-induced genes emerged at 18 months. Notably, neither group showed further induction at 24 months despite continued Aβ accumulation, indicating that microglial activation does not scale proportionally with the amyloid burden. Several canonical components of the disease-associated microglia program were not induced in AppNL-F mice, whereas a set of previously unrecognized microglial genes (Ly86, Snx20, and Pram1) was upregulated. The induction of these novel genes was preserved in the brains of Trem2 R47H knock-in mice, corroborating that the R47H variant exhibits only mild, if any, phenotype. Immunoblotting of selected proteins confirmed these qPCR-based findings. Together, these results reveal a stepwise mode of microglial gene activation under slow amyloid progression and identify novel genes that may be relevant to the early stages of Alzheimer's disease.
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