Dual-Site Fluorescent Sensor as a Multiple Logic System for Studying the Dichotomous Function of Sulfur Dioxide under Oxidative Stress Induced by Peroxynitrite.
Xuerui SongYanxuan GuoChunlin JingYan FengChen CaoManchang KouWei-Sheng LiuDegui WangPublished in: Analytical chemistry (2022)
Intracellular reactive oxygen species and reactive sulfur play a vital role in regulating redox homeostasis and maintaining cell functions. Sulfur dioxide (SO 2 ) has emerged as an important gas signal molecule recently, which is not only a potential reducing agent but also a potential inductor of oxidative stress in organisms. Due to high reactivity, peroxynitrite (ONOO - ) could act on many biomolecules, such as proteins, lipids, and nucleic acids, and cause irreversible damage, eventually leading to cell apoptosis or necrosis. In order to further illuminate the dichotomous role of SO 2 under oxidative stress induced by ONOO - , we designed the first dual-site fluorescent sensor ( NIR-GYf ) for separate or continuous detection of SO 2 and ONOO - . NIR-GYf was successfully used for cell imaging of endogenous SO 2 and ONOO - . In addition, western blotting analysis was used to verify the oxidation and antioxidation of SO 2 and its dichotomous biological influence. Finally, NIR-GYf was integrated with multiple Boolean logic operations to construct an advanced analysis device, thereby realizing the direct analysis of SO 2 and ONOO - levels.
Keyphrases
- oxidative stress
- fluorescent probe
- living cells
- reactive oxygen species
- photodynamic therapy
- dna damage
- single cell
- fluorescence imaging
- diabetic rats
- drug release
- cell therapy
- induced apoptosis
- label free
- cell proliferation
- nitric oxide
- high resolution
- stem cells
- climate change
- hydrogen peroxide
- multidrug resistant
- human health
- fatty acid
- room temperature
- heat shock
- bone marrow
- heat stress
- real time pcr
- single molecule