用于超分辨率成像铁突变细胞溶酶体 HClO 的比率荧光探针。

IF 6.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL Analytical Chemistry Pub Date : 2024-07-01 DOI:10.1021/acs.analchem.4c02435
Hongyong Zheng, Weikang Peng, Miaomiao Liu, Shusheng Zhang*, Xiangzhi Song* and Lei Yang*, 
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引用次数: 0

摘要

铁突变是一种铁依赖性程序性细胞死亡,其特点是脂质活性氧(ROS)生成失调,导致溶酶体中次氯酸(HClO)水平发生异常变化。超分辨率成像技术能在纳米级水平上观察溶酶体的精细结构,因此可用于在亚细胞器水平上检测铁突变过程中溶酶体的次氯酸(HClO)水平。在此,我们利用比率荧光探针 SRF-HClO 对溶酶体 HClO 进行超分辨率成像。结构照明显微镜(SIM)提高了溶酶体靶向的准确性,并使探针SRF-HClO成功地应用于在炎症和铁败坏过程中在纳米尺度上快速监测上调的溶酶体HClO。重要的是,探针 SRF-HClO 还能检测炎症和铁变态反应小鼠体内 HClO 的变化,并评估铁变态反应对小鼠肿瘤的抑制作用。
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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Ratiometric Fluorescent Probe for Super-Resolution Imaging of Lysosome HClO in Ferroptosis Cells

Ferroptosis is an iron-dependent programmed cell death that is characterized by the dysregulation of lipid reactive oxygen species (ROS) production, causing abnormal changes in hypochlorous acid (HClO) levels in lysosomes. Super-resolution imaging can observe the fine structure of the lysosome at the nanometer level; therefore, it can be used to detect lysosome HClO levels during ferroptosis at the suborganelle level. Herein, we utilize a ratiometric fluorescent probe, SRF-HClO, for super-resolution imaging of lysosome HClO. Structured-illumination microscopy (SIM) improves the accuracy of lysosome targeting and enables the probe SRF-HClO to be successfully applied to rapidly monitor the up-regulated lysosome HClO at the nanoscale during inflammation and ferroptosis. Importantly, the probe SRF-HClO can also detect HClO changes in inflammatory and ferroptosis mice and evaluate the inhibitory effect of ferroptosis on mice tumors.

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来源期刊
Analytical Chemistry
Analytical Chemistry 化学-分析化学
CiteScore
12.10
自引率
12.20%
发文量
1949
审稿时长
1.4 months
期刊介绍: Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.
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