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Published on: November 9, 2018
IL-4-induced selective clearance of oligomeric beta-amyloid peptide(1-42) by rat primary type 2 microglia
Eisuke Shimizu1, Kohichi Kawahara, Makoto Kajizono
1Department of Molecular Cell Function, Graduate School of Medical and Pharmaceutical Sciences, Kumamoto University, Kumamoto, Japan.
Abstract:
A hallmark of immunopathology associated with Alzheimer's disease is the presence of activated microglia (MG) surrounding senile plaque deposition of beta-amyloid (Abeta) peptides. Abeta peptides are believed to be potent activators of MG, which leads to Alzheimer's disease pathology, but the role of MG subtypes in Abeta clearance still remains unclear. In this study, we found that IL-4 treatment of rat primary-type 2 MG enhanced uptake and degradation of oligomeric Abeta(1-42) (o-Abeta(1-42)). IL-4 treatment induced significant expression of the scavenger receptor CD36 and the Abeta-degrading enzymes neprilysin (NEP) and insulin-degrading enzyme (IDE) but reduced expression of certain other scavenger receptors. Of cytokines and stimulants tested, the anti-inflammatory cytokines IL-4 and IL-13 effectively enhanced CD36, NEP, and IDE. We demonstrated the CD36 contribution to IL-4-induced Abeta clearance: Chinese hamster ovary cells overexpressing CD36 exhibited marked, dose-dependent degradation of (125)I-labeled o-Abeta(1-42) compared with controls, the degradation being blocked by anti-CD36 Ab. Also, we found IL-4-induced clearance of o-Abeta(1-42) in type 2 MG from CD36-expressing WKY/NCrj rats but not in cells from SHR/NCrj rats with dysfunctional CD36 expression. NEP and IDE also contributed to IL-4-induced degradation of Abeta(1-42), because their inhibitors, thiorphan and insulin, respectively, significantly suppressed this activity. IL-4-stimulated uptake and degradation of o-Abeta(1-42) were selectively enhanced in type 2, but not type 1 MG that express CD40, which suggests that the two MG types may play different neuroimmunomodulating roles in the Abeta-overproducing brain. Thus, selective o-Abeta(1-42) clearance, which is induced by IL-4, may provide an additional focus for developing strategies to prevent and treat Alzheimer's disease.
Insights
Interleukin-4 (IL-4) treatment enhances Alzheimer's disease pathology clearance by activating type 2 microglia. This involves increasing scavenger receptor CD36 and Abeta-degrading enzymes neprilysin (NEP) and insulin-degrading enzyme (IDE).
Area of Science:
- Neuroimmunology
- Alzheimer's Disease Pathogenesis
- Microglial Function
Background:
- Activated microglia surround amyloid plaques in Alzheimer's disease (AD).
- The specific roles of microglial subtypes in clearing beta-amyloid (Abeta) are not fully understood.
- Abeta peptides are implicated in activating microglia and driving AD pathology.
Purpose of the Study:
- To investigate the effect of Interleukin-4 (IL-4) on microglial subtypes and their ability to clear Abeta.
- To elucidate the molecular mechanisms underlying IL-4-mediated Abeta clearance by microglia.
Main Methods:
- Treatment of rat primary type 2 microglia with IL-4.
- Assessment of oligomeric Abeta(1-42) (o-Abeta(1-42)) uptake and degradation.
- Analysis of scavenger receptor CD36 and Abeta-degrading enzymes (NEP, IDE) expression.
- Functional studies using CD36-overexpressing cells and inhibitors of NEP and IDE.
Main Results:
- IL-4 treatment significantly enhanced the uptake and degradation of o-Abeta(1-42) by type 2 microglia.
- IL-4 upregulated scavenger receptor CD36 and Abeta-degrading enzymes neprilysin (NEP) and insulin-degrading enzyme (IDE).
- CD36, NEP, and IDE were confirmed to be critical for IL-4-induced Abeta clearance.
- IL-4-mediated enhancement of o-Abeta(1-42) clearance was specific to type 2 microglia.
Conclusions:
- IL-4 selectively enhances Abeta clearance in type 2 microglia by upregulating CD36, NEP, and IDE.
- Type 1 and type 2 microglia may have distinct roles in neuroinflammation and Abeta metabolism.
- Targeting IL-4 pathways could offer a novel therapeutic strategy for Alzheimer's disease.

