Triple-Channel fluorescent probe for simultaneous detection of Cys, SO₂, and H₂S to discriminate Cancer cells via Transsulfuration pathway metabolic profiling.

IF 4.6
Xin Jiang, Bo Liu, Yang Li, Haoyu Jin, Tianpeng Zhong, Ting Yu, Han Tang, Xiaorui Liu, Danqing Xu, Yuquan Tang, Youyu Zhang, Haitao Li, Huijun Zhou, Peng Yin
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Abstract

Early and accurate cancer diagnosis is essential for improving patient prognosis and guiding effective treatment. Metabolic reprogramming of the transsulfuration pathway is a hallmark of malignancy, characterized by elevated intracellular levels of cysteine (Cys), sulfur dioxide (SO₂), and hydrogen sulfide (H₂S). Here, we report the design and synthesis of TAC, a coumarin-based triple-channel fluorescent probe incorporating three distinct reactive sites for the simultaneous detection of Cys, SO₂, and H₂S. TAC exhibits high sensitivity, excellent selectivity, robust photostability, and negligible spectral crosstalk among the three emission channels. In live-cell imaging, TAC enabled real-time visualization of both endogenous and exogenous analytes with high spatial-temporal resolution. Importantly, TAC accurately discriminated between normal and cancer cells by capturing their distinct sulfur metabolic fingerprints, with cancer cells exhibiting significantly higher fluorescence in all channels. This work introduces the first fluorescent probe capable of triple-analyte imaging within the transsulfuration pathway, providing a powerful platform for non-invasive metabolic profiling and early cancer screening.

三通道荧光探针同时检测Cys、SO₂和H₂S,通过转硫途径代谢谱识别癌细胞。
早期准确诊断肿瘤是改善患者预后和指导有效治疗的关键。转硫途径的代谢重编程是恶性肿瘤的一个标志,其特征是细胞内半胱氨酸(Cys)、二氧化硫(so2)和硫化氢(h2s)水平升高。在这里,我们报道了TAC的设计和合成,TAC是一种基于香豆素的三通道荧光探针,包含三个不同的反应位点,用于同时检测Cys, SO₂和H₂S。TAC在三个发射通道中表现出高灵敏度、优异的选择性、强大的光稳定性和可忽略的光谱串扰。在活细胞成像中,TAC能够以高时空分辨率实时可视化内源性和外源性分析物。重要的是,TAC通过捕获正常细胞和癌细胞不同的硫代谢指纹来准确区分正常细胞和癌细胞,癌细胞在所有通道中都表现出明显更高的荧光。这项工作引入了第一个能够在转硫途径中进行三重分析成像的荧光探针,为非侵入性代谢分析和早期癌症筛查提供了一个强大的平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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