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Updated: Apr 1, 2026

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
AKR1C3-PKM2-oxidative phosphorylation axis drives prostate cancer radioresistance via UBE2T upregulation
Jinyu Zhang1, Jiongzheng Li1, Yufei Yan1
1Department of Pharmacology, College of Basic Medical Sciences, Jilin University, Changchun, PR China.
Abstract:
Radioresistance is one of the primary causes of prostate cancer treatment failure and post-radiotherapy progression. However, there is currently a lack of effective targets to increase radiotherapy sensitivity and inhibit malignant progression. We identified AKR1C3 as a potential key target associated with radioresistance and malignant progression through integrated bioinformatic analysis of RNA sequencing (RNA-seq) data from prostate cancer clinical samples in The Cancer Genome Atlas (TCGA) and Gene Expression Omnibus (GEO) databases. The promotion of radioresistance by AKR1C3 in both AR-positive and AR-negative prostate cancer cells was further validated through in vivo and in vitro experiments. Mechanistic studies revealed that AKR1C3 can bind to PKM2 and accelerate its degradation, thereby inhibiting glycolytic flux and enhancing oxidative phosphorylation (OXPHOS). Increased OXPHOS boosts ROS production, which further promotes NRF2 nuclear translocation, activating the transcription of DNA repair protein UBE2T. This enhanced DNA damage repair ability enables prostate cancer cells with high AKR1C3 expression to exhibit greater resistance to radiotherapy. In summary, this study reveals the molecular mechanism by which AKR1C3 is involved in metabolic reprogramming to promote radioresistance in prostate cancer through PKM2/UBE2T. These findings indicate that targeting AKR1C3 has potential for overcoming radioresistance, providing novel insight into the clinical treatment of prostate cancer.
Insights
Targeting AKR1C3 may overcome radioresistance in prostate cancer. This study reveals AKR1C3 promotes treatment failure by enhancing DNA repair via metabolic reprogramming, offering new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Prostate cancer radioresistance is a major cause of treatment failure.
- Effective targets to enhance radiotherapy sensitivity are lacking.
- AKR1C3 is implicated in malignant progression.
Purpose of the Study:
- Identify novel targets for overcoming prostate cancer radioresistance.
- Elucidate the molecular mechanisms linking AKR1C3 to radioresistance and progression.
- Validate AKR1C3 as a potential therapeutic target.
Main Methods:
- Integrated bioinformatic analysis of TCGA and GEO RNA-seq data.
- In vivo and in vitro experiments to validate AKR1C3 function.
- Mechanistic studies investigating protein interactions and metabolic pathways.
Main Results:
- AKR1C3 identified as a key target associated with radioresistance and progression.
- AKR1C3 promotes radioresistance in both AR-positive and AR-negative prostate cancer cells.
- AKR1C3 accelerates PKM2 degradation, inhibiting glycolysis and enhancing OXPHOS, leading to increased DNA repair via UBE2T.
Conclusions:
- AKR1C3 drives prostate cancer radioresistance through metabolic reprogramming (PKM2/UBE2T pathway).
- Targeting AKR1C3 shows potential for overcoming radioresistance in prostate cancer.
- This study provides novel insights for clinical treatment strategies.
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