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Fluorescence Dynamics Imaging Reveals Inflammation Driven by Ferroptosis through a MAO/ONOO- Dual-Responsive Probe
Wenjiao Wu1, Huming Yan1, Le Zhang2
1Key Laboratory of Chemical Biology and Molecular Engineering of Ministry of Education, Biomedical and Health Laboratory in Shanxi Province, Institute of Molecular Science, Shanxi University, Taiyuan 030006, China.
Abstract:
Inflammation, as a critical defensive response of the body, can exacerbate tissue damage through oxidative cascade reactions when it becomes uncontrolled. Among the key oxidative stress mediators are monoamine oxidase A (MAO-A) and peroxynitrite (ONOO-), which synergistically promote cellular damage. To further elucidate their molecular mechanisms of action, precise and reliable imaging tools are required for spatiotemporal dynamic monitoring of both mediators. Addressing the limitations of traditional dual-probe detection, which suffers from inconsistencies in distribution and response, this study developed a mitochondria-targeted dual-responsive fluorescent probe, KMO, achieving the first in situ real-time visualization of MAO-A and ONOO- in inflammatory cells and an acute hepatitis mouse model. Utilizing this tool, we revealed a self-amplifying cycle in inflammation characterized by "MAO-A activation─ONOO- burst─ferroptosis─inflammation exacerbation", and demonstrated that inhibiting ferroptosis can disrupt this pathway. This work not only provides a fluorescent imaging tool but also establishes a theoretical and experimental foundation for elucidating the mechanisms of acute inflammation and targeted interventions.
Insights
Researchers developed a novel fluorescent probe to visualize inflammation mediators monoamine oxidase A (MAO-A) and peroxynitrite (ONOO⁻) in real-time. This tool revealed a self-amplifying inflammatory cycle, highlighting ferroptosis as a therapeutic target.
Area of Science:
- Biomedical Imaging
- Molecular Biology
- Inflammation Research
Background:
- Uncontrolled inflammation drives tissue damage via oxidative stress.
- Monoamine oxidase A (MAO-A) and peroxynitrite (ONOO⁻) are key mediators of oxidative damage.
- Existing dual-probe methods for monitoring these mediators lack consistency.
Purpose of the Study:
- To develop a mitochondria-targeted, dual-responsive fluorescent probe for real-time visualization of MAO-A and ONOO⁻.
- To investigate the molecular mechanisms underlying inflammation-associated oxidative stress.
- To explore potential therapeutic interventions targeting identified pathways.
Main Methods:
- Development of a novel mitochondria-targeted dual-responsive fluorescent probe (KMO).
- In situ real-time imaging of MAO-A and ONOO⁻ in inflammatory cells and an acute hepatitis mouse model.
- Analysis of the inflammatory self-amplifying cycle involving MAO-A, ONOO⁻, and ferroptosis.
Main Results:
- Achieved the first in situ real-time visualization of MAO-A and ONOO⁻ dynamics.
- Revealed a self-amplifying inflammatory cycle: MAO-A activation → ONOO⁻ burst → ferroptosis → inflammation exacerbation.
- Demonstrated that inhibiting ferroptosis disrupts this inflammatory pathway.
Conclusions:
- The KMO probe offers a reliable tool for dynamic monitoring of MAO-A and ONOO⁻ in inflammatory processes.
- Identified a novel self-amplifying inflammatory mechanism involving MAO-A, ONOO⁻, and ferroptosis.
- Inhibiting ferroptosis presents a potential therapeutic strategy for acute inflammation.
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