生物正交化学
化学
乙烯基
激进的
直接的
组合化学
选择性
细胞保护
同位素标记
光化学
反应中间体
氨基酸
靶蛋白
生物物理学
蛋白质结构
反应性(心理学)
蛋白质-蛋白质相互作用
蛋白质工程
纳米技术
合理设计
作者
Jiawei Tan,Kejia Hao,Yi Yuan,Shasha Xie,Li Qi,Qiaoling Che,Yan Li,Renxiao Wang,Yaoyang Zhang,Yiyun Chen
摘要
Radical reactions offer transformative potential in biological contexts but remain constrained by poor selectivity and off-target reactivity. We address these limitations through visible-light photocatalytic generation of diaryl ketyl radicals from benzophenones. This strategy circumvents traditional UV excitation pathways by suppressing triplet diradical formation─which drives nonspecific [2 + 2] cycloadditions and H atom abstraction─in favor of bioorthogonal radical–radical coupling. Our platform enables precise live-cell protein labeling with minimal cytotoxicity, including in sensitive primary neuronal cultures, and achieves site-specific modification via genetically incorporated benzophenone-based unnatural amino acids Bpa. The spatial selectivity of this approach exceeds conventional UV-based cross-linking methods, facilitating site-to-site analysis of tertiary protein interactions in structurally defined complexes. We demonstrate these capabilities by (1) quantifying dimerization interfaces of the Diels–Alderase PyrI4 and (2) resolving Bcl-XL/Bid interactions critical for apoptotic regulation. This photocatalysis-driven methodology establishes a robust alternative to cycloaddition-based bioorthogonal chemistry for spatiotemporally controlled interrogation of dynamic biomolecular processes.
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