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Updated: Mar 1, 2026

Monitoring Stub1-Mediated Pexophagy
Published on: May 12, 2023
C10ORF10/DEPP-mediated ROS accumulation is a critical modulator of FOXO3-induced autophagy
S Salcher1,2, M Hermann3, U Kiechl-Kohlendorfer1
1Department of Pediatrics II, Medical University Innsbruck, Innrain 66, A-6020, Innsbruck, Austria.
Background:
Neuroblastoma is the most common solid tumor in childhood and develops from undifferentiated progenitor cells of the sympathetic nervous system. In neuronal tumor cells DNA-damaging chemotherapeutic agents activate the transcription factor FOXO3 which regulates the formation of reactive oxygen species (ROS) and cell death as well as a longevity program associated with therapy resistance. We demonstrated before that C10ORF10/DEPP, a transcriptional target of FOXO3, localizes to peroxisomes and mitochondria and impairs cellular ROS detoxification. In the present study, we investigated the impact of FOXO3 and DEPP on the regulation of autophagy. Autophagy serves to reduce oxidative damage as it triggers a self-degradative process for the removal of aggregated or misfolded proteins and damaged organelles.
Methods:
The effect of FOXO3 and DEPP on autophagy induction was analyzed using live cell fluorescence microscopy and immunoblot analyses of SH-EP cells transfected with a plasmid for EYFP-LC3 and with siRNAs specific for LC3, respectively. ROS steady-state levels were measured with reduced MitoTrackerRed CM-H2XROS. Cellular apoptosis was analyzed by flow cytometry and the caspase 3/7 assay.
Results:
We report for the first time that DEPP induces ROS accumulation and thereby mediates the formation of autophagosomes as inhibition of ROS formation by N-acetyl-cysteine completely blocks autophagy. We further demonstrate that H2O2-treatment triggers autophagy-induction by FOXO3-mediated DEPP expression. Importantly, knockdown of DEPP was sufficient to efficiently inhibit autophagy-induction under different stress conditions such as serum starvation and genotoxic stress, suggesting that DEPP expression is critical for the initiation of autophagy in neuroblastoma. FOXO3-triggered autophagy partially protects neuroblastoma cells from cell death. Consistent with this concept, we demonstrate that inhibition of autophagy by LC3-knockdown significantly increased etoposide- and doxorubicin-induced apoptosis. These results were also confirmed by the use of the autophagy-inhibitor chloroquine that significantly enhanced the chemotherapeutic effect of etoposide and doxorubicin in neuronal tumor cells.
Conclusion:
Targeting FOXO3/DEPP-triggered autophagy is a promising strategy to sensitize neuroblastoma cells to chemotherapy.
Insights
This study reveals that DEPP, a target of FOXO3, triggers autophagy in neuroblastoma cells by increasing reactive oxygen species (ROS). Inhibiting this autophagy enhances chemotherapy effectiveness, suggesting a new therapeutic strategy.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Neuroblastoma, a common childhood cancer, arises from sympathetic nervous system progenitor cells.
- Chemotherapy in neuroblastoma activates FOXO3, influencing reactive oxygen species (ROS), cell death, and therapy resistance.
- FOXO3 target C10ORF10/DEPP impairs ROS detoxification and its role in autophagy was investigated.
Purpose of the Study:
- To investigate the impact of FOXO3 and DEPP on autophagy regulation in neuroblastoma.
- To explore the role of DEPP-mediated ROS accumulation in autophagy induction.
- To assess the potential of targeting FOXO3/DEPP-triggered autophagy to enhance chemotherapy.
Main Methods:
- Live cell fluorescence microscopy and immunoblot analyses were used to study autophagy.
- ROS levels were measured using MitoTrackerRed CM-H2XROS.
- Apoptosis was assessed via flow cytometry and caspase 3/7 assays.
Main Results:
- DEPP induces ROS accumulation, mediating autophagosome formation; ROS inhibition blocks autophagy.
- H2O2 treatment triggers FOXO3-mediated DEPP expression and autophagy.
- DEPP knockdown inhibits autophagy under various stress conditions; FOXO3-triggered autophagy offers partial cell protection.
- Autophagy inhibition significantly increases chemotherapy-induced apoptosis.
Conclusions:
- DEPP is critical for initiating autophagy in neuroblastoma.
- FOXO3-triggered autophagy partially protects neuroblastoma cells from chemotherapy-induced death.
- Targeting FOXO3/DEPP-induced autophagy is a promising strategy to sensitize neuroblastoma to chemotherapy.
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