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活细胞中HO的化学遗传学检测与定量分析。

Chemogenetic detection and quantitation of HO in living cells.

作者信息

Eid Mohammad, Barayeu Uladzimir, Dick Tobias P

机构信息

Division of Redox Regulation, DKFZ-ZMBH Alliance, German Cancer Research Center (DKFZ), Heidelberg, Germany.

Faculty of Biosciences, Heidelberg University, Heidelberg, Germany.

出版信息

Nat Protoc. 2025 Aug 11. doi: 10.1038/s41596-025-01226-9.

Abstract

Hydrogen peroxide (HO) is a natural product of aerobic metabolism. It acts as a signaling molecule and regulates fundamental cellular functions. However, it has remained difficult to measure intracellular HO with high specificity and in a quantitative manner. Here, we present a detailed protocol for a chemogenetic method that enables the detection and quantitation of HO in living cells by converting intracellular HO into fluorescent or luminescent signals. This is achieved by expressing the engineered heme peroxidase APEX2 in cells and subcellular locations of interest and by providing an appropriate fluorogenic or luminogenic substrate from outside. This method differs fundamentally from previously developed genetically encoded HO probes; those are reversible and measure the balance between probe thiol oxidation and reduction. By contrast, APEX2 turns over its substrate irreversibly and therefore directly measures endogenous HO availability. Our detailed step-by-step protocol covers the generation of APEX2-expressing cell lines, the implementation of fluorescent and luminescent measurements and examples for application. Ectopic expression of APEX2 can be achieved in 3 days, while the actual measurements typically require 1-2 h. This protocol is intended for entry-level scientists.

摘要

过氧化氢(H₂O₂)是有氧代谢的天然产物。它作为一种信号分子,调节细胞的基本功能。然而,以高特异性和定量方式测量细胞内的H₂O₂仍然很困难。在这里,我们提出了一种化学遗传学方法的详细方案,该方法通过将细胞内的H₂O₂转化为荧光或发光信号,能够在活细胞中检测和定量H₂O₂。这是通过在感兴趣的细胞和亚细胞位置表达工程化的血红素过氧化物酶APEX2,并从外部提供合适的荧光或发光底物来实现的。该方法与先前开发的基因编码H₂O₂探针有根本区别;那些探针是可逆的,测量的是探针硫醇氧化和还原之间的平衡。相比之下,APEX2不可逆地转化其底物,因此直接测量内源性H₂O₂的可用性。我们详细的分步方案涵盖了表达APEX2的细胞系的生成、荧光和发光测量的实施以及应用示例。APEX2的异位表达可在3天内实现,而实际测量通常需要1-2小时。本方案适用于入门级科学家。

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