Related Experiment Video
Updated: Sep 7, 2026

Revealing the Ferroptotic Phenotype of Medulloblastoma
Published on: March 15, 2024
An excitation-customized ICT-type turn-on probe for visualization of cysteine fluctuation in diverse drug-induced
Yi-Jun Gong1, Wenxue Shi2, Aiying Ma2
1Henan International Joint Laboratory of Smart Molecules and Identification and Diagnostic Functions, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Collaborative Innovation Centre of Henan Province for Green Manufacturing of Fine Chemicals, Henan Key Laboratory of Organic Functional Molecule and Drug Innovation, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang, Henan, 453007, P. R. China. gongyijun@htu.edu.cn.
Abstract:
Cysteine (Cys) acts as a key upstream regulator of cellular redox homeostasis and ferroptosis. Distinct ferroptosis inducers exert different effects on Cys metabolism. Erastin disrupts Xc--dependent cystine uptake to deplete cellular Cys and trigger ferroptosis, while RSL3 induces ferroptosis by impairing downstream lipid metabolism without disturbing Cys homeostasis. Thus, real-time monitoring of Cys fluctuations is vital for distinguishing early ferroptosis initiation from downstream cascades. Conventional PET-type turn-on fluorescent probes suffer from high background and poor sensitivity. Herein, we report an excitation-customized strategy to develop ICT-type turn-on probe for Cys sensing. Based on a series of chalcogen-regulated near-infrared hemicyanine dyes, a selenium-substituted fluorophore HDXZ was screened out to construct the Cys-specific probe BXXZ. Under the customized excitation, BXXZ exhibited high fluorescence enhancement (66-fold), a low detection limit (0.23 μM), fast response, and excellent selectivity for Cys over Hcy and GSH. Benefiting from these merits, BXXZ enabled real-time visualization of differential Cys fluctuation in ferroptosis induced by erastin and RSL3, and achieved in situ tracking of intratumoral Cys fluctuation in HepG2 xenograft models. This work provides a feasible design strategy for high-quality ICT-type turn-on probes and a powerful imaging tool to explore the relationship between Cys homeostasis and ferroptosis.