前药
化学
活性氧
氧化磷酸化
氧化应激
过氧化氢
KEAP1型
淀粉样蛋白(真菌学)
生物物理学
内生
生物化学
小分子
神经退行性变
药理学
细胞信号
转基因小鼠
激进的
细胞生物学
组合化学
羟基自由基
海马结构
分子
化学合成
作者
Jimin Lee,Eunseo Hong,Chanju Na,Yan Li,Jun Go,Ju-Eun Kim,Hyun-Hee Seo,Jong‐Min Suh,Jimin Kwak,Young‐Ho Lee,Kyoung‐Shim Kim,Chul‐Ho Lee,Mingeun Kim,Mi Hee Lim
出处
期刊:Small
[Wiley]
日期:2026-05-31
卷期号:: e74013-e74013
摘要
ABSTRACT Targeting disease‐specific chemical signals enables precise therapeutic control over complex pathologies. In Alzheimer's disease (AD), elevated hydrogen peroxide (H 2 O 2 ) accompanies hallmark features, including amyloid‐β (Aβ) aggregate deposition and metal ion dyshomeostasis, creating an oxidative milieu primed for selective chemical activation. Here, we show a rationally designed prodrug platform that harnesses H 2 O 2 as an endogenous trigger for redox‐based therapy. Boronic ester‐masked precursors ( BE‐1 and BE‐2 ) remain inert under physiological conditions but undergo rapid oxidative deboronation in the presence of H 2 O 2 , releasing redox‐active aminophenols. These activated molecules exhibit multimodal pathological modulation, as revealed by molecular‐level biochemical and biophysical analyses: scavenging reactive oxygen species, inducing residue‐specific oxidative modifications of Aβ, and redirecting aggregation pathways of both metal‐free and metal‐bound Aβ. In AD transgenic mice, BE‐1 undergoes conversion to its active form within the brain tissue. Long‐term administration of BE‐1 markedly reduces hippocampal oxidative stress, lowers amyloid plaque burden, and improves cognitive performance. This pathology‐responsive, activity‐based prodrug strategy provides a chemically precise framework for simultaneously modulating multiple, interconnected drivers of neurodegeneration.
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