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Updated: Jun 18, 2026

Fabrication of Amyloid-β-Secreting Alginate Microbeads for Use in Modelling Alzheimer's Disease
Published on: July 6, 2019
A small molecule modulating heterogeneous amyloid-β isoforms improves cognitive and pathological outcomes in acute
JiMin Kim1, Dohui Ku1, InWook Park1
1Department of Pharmacy and Yonsei Institute of Pharmaceutical Sciences, College of Pharmacy, Yonsei University, Incheon, 21983, Republic of Korea.
Background:
Alzheimer's disease (AD) is characterized by the pathological aggregation of amyloid-β (Aβ) peptides into neurotoxic assemblies. While recent antibody therapies targeting Aβ have shown clinical efficacy, they face limitations including specificity for particular Aβ species and accessibility challenges. The structural heterogeneity of Aβ isoforms, including Aβ40, Aβ42, and pyroglutamate-modified AβpE3-42, necessitates therapeutic strategies with broad-spectrum activity.
Methods:
The effects of YIAD-1003, a dihydropyrrolo[1,2-a]pyrazine derivative, were evaluated in vitro using Thioflavin T fluorescence assays and A11 dot blot to assess fibrillization and dissociation of preformed aggregates across Aβ40, Aβ42, and AβpE3-42. In vivo efficacy was examined in an acute Aβ42-induced AD model and in 5XFAD transgenic mice. Cognitive performance was assessed using spatial and associative memory tests. Amyloid pathology, including soluble Aβ and fibrillar deposition, and neuroinflammation markers were quantified by biochemical and histological analyses.
Results:
YIAD-1003 inhibited fibril formation and promoted dissociation of preformed aggregates across multiple Aβ isoforms in vitro. In the acute model, co-administration of YIAD-1003 ameliorated Aβ42-induced memory impairment. In 5XFAD mice, oral administration improved cognitive performance, reduced plaque burden and soluble Aβ levels, and attenuated pathological alterations associated with neuroinflammation.
Conclusions:
YIAD-1003, a dihydropyrrolo[1,2-a]pyrazine derivative, exhibits broad-spectrum intervention in Aβ assembly across multiple isoforms and confers functional and pathological benefits in AD mouse models. These findings support the development of multi-isoform small-molecule modulators as a possible AD therapeutic strategy.
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