化学
硫黄素
纤维
背景(考古学)
生物物理学
淀粉样蛋白(真菌学)
姜黄素
淀粉样纤维
淀粉样β
蛋白质聚集
肽
组氨酸
结晶学
分子
质谱法
中子
胰淀素
生物化学
亲缘关系
结合亲和力
药物输送
蛋白质结构
作者
Sebastiano Micocci,Stefano Parisotto,Diego Alberti,Alberto Lanfranco,Valeria Bitonto,Polyssena Renzi,Martina Salmi,Andrea Magnani,Katiuscia Pagano,Laura Ragona,Nicoletta Protti,Annamaria Deagostino,Simonetta Geninatti Crich,Simonetta Geninatti Crich
标识
DOI:10.1002/advs.202521701
摘要
ABSTRACT Alzheimer's disease (AD) is a neurodegenerative disorder characterized by progressive cognitive decline. The aggregation of amyloid‐beta (Aβ) peptides into oligomers and fibrils is central to its pathogenesis. While oligomers represent the most neurotoxic species, larger aggregates serve as reservoirs, maintaining pathological Aβ levels. To our knowledge, this study is the first to investigate Boron Neutron Capture Therapy (BNCT) as a method to selectively destabilize Aβ aggregates. This is achieved by inducing structural modifications in the Aβ peptide, aiming to convert fibrils into innocuous species. The approach utilizes 10 B‐enriched monocarbonyl analogs of curcumin (BMACs), a novel molecule that binds to Aβ fibrils and enables the site‐specific release of high‐linear‐energy‐transfer (LET) α particles and lithium ions upon neutron exposure. In vitro, Aβ aggregates were characterized using FESEM and Thioflavin T staining. The binding affinities of BMACs were determined through competition assays, with inhibition constants calculated using the Cheng‐Prusoff equation. Post‐irradiation analysis by 1 H‐NMR and mass spectrometry demonstrated selective oxidation of histidine residues, a chemical modification capable of inducing fibril destabilization. This study provides proof of concept that not only offers future perspectives for Alzheimer's treatment but also enhances the understanding of radiation effects on proteins, particularly within the context of amyloidosis.
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