细胞骨架
微管
化学
生物物理学
共焦显微镜
细胞生物学
共焦
光敏剂
线粒体
氧化磷酸化
模块化设计
内体
粒体自噬
生物化学
纳米技术
细胞器
内化
罗丹明
中间灯丝
诺可达唑
胞浆
作者
Gang Xing,Zhihao Dong,HD Sun,Johannes Kilian Dreizler,Jun Lu,Dongjuan Si,Hanqing Zhao,Biqin Dong,Jingjing Xie,Thet Thet Htar,Dandan Wang,Kai Johnsson,Cong Li,Shuo Han,Lu Wang
摘要
ABSTRACT Cytoskeletal filaments and their associated organelles/proteins form a system‐level network that organizes cellular architecture and activity, yet chemical tools for spatiotemporal control and proteome‐wide mapping of these networks in living cells remain scarce. Here we present a modular strategy to generate small‐molecule, singlet‐oxygen‐generating ( 1 O 2 ‐genic) photosensitizers for controlling and decoding cytoskeletal networks. Single‐step installation of a sulfamide‐PEG 2 ‐ligand onto rhodamine photosensitizer scaffolds yields binding‐activated probes that mainly exist as the non‐excitable spirolactams in solution but largely switch to 1 O 2 ‐producing zwitterions upon binding to microtubules or F‐actin. Continuous illumination in confocal microscopy generates a burst of 1 O 2 , driving highly localized oxidation and second‐timescale collapse of filament‐organelle/protein networks, revealing key roles for microtubules in lysosome transport and mitochondrial dynamics. In parallel, light‐tunable mild 1 O 2 generation enables selective proteome‐wide proximity labeling of microtubule‐ and F‐actin‐associated networks, unveiling previously uncharacterized dual interactors at the microtubule‐F‐actin interface. This modular platform provides an effective tool for genetic‐manipulation‐free mapping and spatiotemporally controlled, localized oxidative perturbation of endogenous networks.
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