A glitazone-based chemical platform for mechanistic modulation of amyloid-β aggregation and associated pathology

Alzheimer's disease (AD) arises from intertwined pathological features, including amyloid-β (Aβ) aggregation, metal ion dyshomeostasis, oxidative stress, and cholinergic dysfunction, yet chemical strategies capable of interrogating and regulating these processes remain limited. Here, we identify glitazone derivatives as chemically tunable small molecules that modulate multiple AD-relevant pathways. Through intermolecular interactions, these compounds alter the aggregation behavior of both metal-free and metal-bound Aβ across distinct assembly stages, attenuating associated cytotoxicity. Integrated biophysical and chemical analyses reveal residue- and conformation-specific interactions between glitazone derivatives and Aβ, accompanied by metal-dependent oxidative modifications. In addition to aggregation control, selected glitazone derivatives exhibit antioxidant activity and acetylcholinesterase inhibition, enabling engagement of multiple pathological targets of AD. Collectively, this work establishes glitazones as a chemically tunable platform for mechanistic investigation and multi-target-directed modulation of amyloid pathology, providing a framework for probing interconnected biochemical processes underlying AD.

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Publication Details

Journal
Cell Reports Physical Science
Published
2026-09-29
DOI
https://doi.org/10.1016/j.xcrp.2026.103563
Primary Topic
Alzheimer's disease research and treatments
Type
article
Field-Weighted Citation Impact
0.00

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article

A glitazone-based chemical platform for mechanistic modulation of amyloid-β aggregation and associated pathology

박성민, Mi Hee Lim, Eunseo Hong, Jimin Kwak et al.
Cell Reports Physical Science
Alzheimer's disease research and treatments
article

A glitazone-based chemical platform for mechanistic modulation of amyloid-β aggregation and associated pathology

박성민, Mi Hee Lim, Eunseo Hong, Jimin Kwak, Yuxi Lin, Young-Ho Lee
article en

Abstract

Alzheimer's disease (AD) arises from intertwined pathological features, including amyloid-β (Aβ) aggregation, metal ion dyshomeostasis, oxidative stress, and cholinergic dysfunction, yet chemical strategies capable of interrogating and regulating these processes remain limited. Here, we identify glitazone derivatives as chemically tunable small molecules that modulate multiple AD-relevant pathways. Through intermolecular interactions, these compounds alter the aggregation behavior of both metal-free and metal-bound Aβ across distinct assembly stages, attenuating associated cytotoxicity. Integrated biophysical and chemical analyses reveal residue- and conformation-specific interactions between glitazone derivatives and Aβ, accompanied by metal-dependent oxidative modifications. In addition to aggregation control, selected glitazone derivatives exhibit antioxidant activity and acetylcholinesterase inhibition, enabling engagement of multiple pathological targets of AD. Collectively, this work establishes glitazones as a chemically tunable platform for mechanistic investigation and multi-target-directed modulation of amyloid pathology, providing a framework for probing interconnected biochemical processes underlying AD.

Cell Reports Physical ScienceVol. 7(10)
Korea Advanced Institute of Science and Technology (KR), Chungnam National University (KR), Tohoku University (JP), Korea Basic Science Institute (KR), Frontier Research Institute for Interdisciplinary Sciences, Tohoku University (JP), Chung-Ang University (KR), Korea University of Science and Technology (KR)
Korea Basic Science Institute, National Research Foundation of Korea, Korea Institute of Marine Science and Technology promotion
Zero hunger
Openalex Percentile: Top 13%
Alzheimer's disease research and treatments
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