化学
双吖丙啶
生物正交化学
烷基
组合化学
光亲和标记
生物物理学
催化作用
光化学
原位
铱
光催化
细胞外
微流控
点击化学
光动力疗法
药物发现
纳米技术
亲和标签
生物化学
蛋白质组
分子探针
位阻效应
化学生物学
血浆蛋白结合
药物输送
作者
Shuyi Wang,Yaxin Sun,Weichan Si,Xiaoping Tan,Jieling Lou,Zhicheng Song,Xingjie Wu,Xiaoxuan Ye,Hongchen Cai,Xiao Wang,Ruoqi Ai,Sijun Pan,Wei Huang
摘要
Elucidating drug-target interactions within native biological environments is critical for rational drug design and personalized medicine. While photoaffinity labeling (PAL) serves as a powerful tool for capturing these transient interactions, conventional photoactivation by UV light suffers from phototoxicity, limited penetration, and low yields. Advances in visible-light photocatalysis provide new opportunities, yet current strategies often rely on direct catalyst conjugation to the drug, introducing steric and physicochemical perturbations that can compromise native binding affinity. Moreover, the photocatalytic activation of alkyl diazirines, despite their widespread utility in PAL, has remained largely unexplored. Here we report a photocatalysis-enhanced photoaffinity labeling (PE-PAL) platform that activates bioorthogonal alkyl diazirine probes using separate iridium photocatalysts under blue light. By employing lipid- and peptide-modified iridium bioconjugates, PE-PAL achieves efficient labeling at submicromolar catalyst loading with enhanced biocompatibility, enabling in situ drug analysis via cellular imaging and proteome profiling. We further extended this platform to extracellular vesicle (EV) analysis by integrating probe-mediated enzymatic amplification with nanoplasmonic resonators to directly profile drug-target interactions in clinical blood samples. From microliter-scale samples, we achieved sensitive, multiparametric analysis of disease-associated EV labeling indices, demonstrating the translational potential of PE-PAL for EV-based liquid biopsy.
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