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Updated: Oct 21, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
CISD3 inhibition drives cystine-deprivation induced ferroptosis
Yanchun Li1,2, Xin Wang3, Zhihui Huang3
1Laboratory Medicine Center, Clinical Research Institute, Zhejiang Provincial People's Hospital, Affiliated People's Hospital, Hangzhou Medical College, Hangzhou, Zhejiang, 310014, China.
Abstract:
Ferroptosis, a new form of programmed cell death, not only promotes the pathological process of various human diseases, but also regulates cancer progression. Current perspectives on the underlying mechanisms remain largely unknown. Herein, we report a member of the NEET protein family, CISD3, exerts a regulatory role in cancer progression and ferroptosis both in vivo and in vitro. Pan-cancer analysis from TCGA reveals that expression of CISD3 is generally elevated in various human cancers which are consequently associated with a higher hazard ratio and poorer overall survival. Moreover, knockdown of CISD3 significantly accelerates lipid peroxidation and accentuates free iron accumulation triggered by Xc- inhibition or cystine-deprivation, thus causing ferroptotic cell death. Conversely, ectopic expression of the shRNA-resistant form of CISD3 (CISD3res) efficiently ameliorates the ferroptotic cell death. Mechanistically, CISD3 depletion presents a metabolic reprogramming toward glutaminolysis, which is required for the fuel of mitochondrial oxidative phosphorylation. Both the inhibitors of glutaminolysis and the ETC process were capable of blocking the lipid peroxidation and ferroptotic cell death in the shCISD3 cells. Besides, genetic and pharmacological activation of mitophagy can rescue the CISD3 knockdown-induced ferroptosis by eliminating the damaged mitochondria. Noteworthily, GPX4 acts downstream of CISD3 mediated ferroptosis, which fails to reverse the homeostasis of mitochondria. Collectively, the present work provides novel insights into the regulatory role of CISD3 in ferroptotic cell death and presents a potential target for advanced antitumor activity through ferroptosis.
Insights
The study reveals CISD3, a NEET family protein, drives cancer progression and ferroptosis. Inhibiting CISD3 induces ferroptosis, offering a potential new target for cancer therapy.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Ferroptosis is a programmed cell death pathway implicated in diseases and cancer progression.
- The precise mechanisms regulating ferroptosis, particularly in cancer, are not fully understood.
Purpose of the Study:
- To investigate the role of CISD3, a NEET family protein, in regulating cancer progression and ferroptosis.
- To elucidate the molecular mechanisms by which CISD3 influences ferroptosis.
Main Methods:
- Pan-cancer analysis using TCGA data to correlate CISD3 expression with patient outcomes.
- In vitro and in vivo experiments involving CISD3 knockdown and overexpression.
- Assessment of lipid peroxidation, iron accumulation, metabolic pathways (glutaminolysis, oxidative phosphorylation), and mitophagy.
Main Results:
- Elevated CISD3 expression is linked to poorer survival in multiple cancers.
- CISD3 knockdown enhances ferroptosis by promoting lipid peroxidation and iron accumulation.
- CISD3 depletion reprograms metabolism towards glutaminolysis and impacts mitochondrial function, which can be rescued by mitophagy activation.
- GPX4 acts downstream of CISD3 in ferroptosis regulation.
Conclusions:
- CISD3 plays a significant role in promoting cancer progression by inhibiting ferroptosis.
- Targeting CISD3 could be a viable strategy for enhancing antitumor activity via ferroptosis induction.
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