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Updated: Sep 5, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Photocontrollable Fluorescence Imaging of Mitochondrial Peroxynitrite during Ferroptosis with High Fidelity
Xilei Xie1, Yawen Liu1, Guangzhao Liu1
1College of Chemistry, Chemical Engineering and Materials Science, Key Laboratory of Molecular and Nano Probes, Ministry of Education, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong, Shandong Normal University, Jinan 250014, P. R. China.
Abstract:
Ferroptosis, a new regulatory cell death modality, underlies the pathogenesis of a broad range of disorders. Although much efforts have been made to uncover the molecular mechanisms, some mechanistic details of ferroptosis still remain poorly understood. Particularly, the functional relevance of mitochondrial reactive oxygen species (ROS) in ferroptosis is still highly controversial, which is partially due to the fact that it still remains puzzled how the mitochondrial ROS level varies during ferroptosis. The conventional mitochondria-targeted probes may react with cytosolic ROS and show fluorescence variation before entering mitochondria, thus probably giving a false result on the mitochondrial ROS level and leading to the misjudgment on its biofunction. To circumvent this issue, we rationally designed a photocontrollable and mitochondria-targeted fluorescent probe to in situ visualize the mitochondrial peroxynitrite (ONOO-), which is the ROS member and mediator of ferroptosis. The photoactivated probe was endowed with a highly specific and sensitive fluorescence response to ONOO-. Notably, the response activity could be artificially regulated with light irradiation, which ensured that all the probe molecules passed through the cytosol in the locked status and were then photoactivated after reaching mitochondria. This photocontrolled fluorescence imaging strategy eliminated the interference of ONOO- outside the mitochondria, thus potentially afforded improved fidelity for mitochondrial ONOO- bioimaging in live cells and animal models. With this probe, for the first time, we revealed the mitochondrial ONOO- flux and its probable biological source during erastin-induced ferroptosis. These results suggest a tight correlation between mitochondrial ONOO-/ROS and ferroptotic progression, which will further facilitate the comprehensive exploration and manipulation of ferroptosis.
Insights
Researchers developed a novel light-controlled fluorescent probe to accurately measure mitochondrial peroxynitrite during ferroptosis. This tool clarifies the role of mitochondrial reactive oxygen species (ROS) in this cell death pathway.
Area of Science:
- Cell Biology
- Biochemistry
- Biomedical Engineering
Background:
- Ferroptosis is a regulated cell death pathway implicated in various diseases.
- The precise role of mitochondrial reactive oxygen species (ROS) in ferroptosis remains unclear due to limitations in current detection methods.
- Existing probes may inaccurately reflect mitochondrial ROS levels by reacting with cytosolic ROS.
Purpose of the Study:
- To design and validate a photocontrollable, mitochondria-targeted fluorescent probe for accurate in situ visualization of mitochondrial peroxynitrite (ONOO⁻).
- To investigate the mitochondrial ONOO⁻ flux and its source during erastin-induced ferroptosis.
- To elucidate the functional relevance of mitochondrial ROS in ferroptosis.
Main Methods:
- Development of a photocontrollable, mitochondria-targeted fluorescent probe with high specificity and sensitivity to ONOO⁻.
- Utilizing light irradiation to activate the probe specifically within mitochondria, preventing interference from cytosolic ROS.
- Employing the probe for in situ imaging of mitochondrial ONOO⁻ in live cells and animal models during erastin-induced ferroptosis.
Main Results:
- The photocontrolled probe successfully visualized mitochondrial ONOO⁻ flux during ferroptosis with enhanced fidelity.
- The study identified a probable biological source of mitochondrial ONOO⁻ in erastin-induced ferroptosis.
- A strong correlation was established between mitochondrial ONOO⁻/ROS and the progression of ferroptosis.
Conclusions:
- The novel photocontrollable probe overcomes limitations of conventional methods for studying mitochondrial ROS in ferroptosis.
- Mitochondrial ONOO⁻ plays a significant role in ferroptosis progression.
- This work provides a valuable tool for further research into ferroptosis mechanisms and therapeutic strategies.

