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Enzymatic Recording of Local Hydrogen Peroxide Generation Using Genetically Encodable Enzyme

Author(s)
Mishra, Pratyush KumarPark, IssacSharma, NirmaliYoo, Chang-MoLee, Hee YongRhee, Hyun-Woo
Issued Date
2022-10
DOI
10.1021/acs.analchem.2c01966
URI
https://scholarworks.unist.ac.kr/handle/201301/60711
Citation
ANALYTICAL CHEMISTRY, v.94, no.43, pp.14869 - 14877
Abstract
Reactive oxygen species (ROS) are endogenously generated in live cells and essential for cell signaling. However, excess ROS generation can cause oxidative damage to biomolecules, which are implicated in various human diseases, including aging. Here, we developed an in vivo hydrogen peroxide monitoring method using a genetically encodable peroxidase (APEX2)-based system. We confirmed that APEX2 is activated by endogenous H2O2 and generates phenoxyl radicals to produce biotinylated signals (i.e., biotin-phenol) and fluorescent signals (i.e., AmplexRed), which can be detected using a fluorescence microscope. We observed that all subcellular targeted APEX2s were activated by local H2O2 generation by menadione treatment. Among them, the endoplasmic reticulum lumen and lysosome-targeted APEX2 showed the highest response upon addition of menadione which implies that local H2O2 levels in those spaces are highly increased by menadione treatment. Using APEX2, we also found that a minimum amount of menadione (>10 mu M) is required to generate detectable levels of H2O2 in all subcellular compartments. We also checked the local H2O2-quenching effect of N- acetylcysteine using our system. As APEX2 can be genetically expressed in diverse live organisms (e.g., cancer cell lines, mice, fly, worm, and yeast), our method can be effectively used to detect local generation of endogenously produced H2O2 in diverse live models.
Publisher
AMER CHEMICAL SOC
ISSN
0003-2700
Keyword
REACTIVE OXYGENFLUORESCENT-PROBESLIVING CELLSDNA-DAMAGEMITOCHONDRIABIOLOGYROS

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