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Published on: November 7, 2025
SREBF1 Activity Is Regulated by an AR/mTOR Nuclear Axis in Prostate Cancer
Étienne Audet-Walsh1, Mathieu Vernier1, Tracey Yee1
1Goodman Cancer Research Centre, McGill University, Montréal, Québec, Canada.
Abstract:
Reprogramming of cellular metabolism is an important feature of prostate cancer, including altered lipid metabolism. Recently, it was observed that the nuclear fraction of mTOR is essential for the androgen-mediated metabolic reprogramming of prostate cancer cells. Herein, it is demonstrated that the androgen receptor (AR) and mTOR bind to regulatory regions of sterol regulatory element-binding transcription factor 1 (SREBF1) to control its expression, whereas dual activation of these signaling pathways also promotes SREBF1 cleavage and its translocation to the nucleus. Consequently, SREBF1 recruitment to regulatory regions of its target genes is induced upon treatment with the synthetic androgen R1881, an effect abrogated upon inhibition of the mTOR signaling pathway. In turn, pharmacologic and genetic inhibition of SREBF1 activity impairs the androgen-mediated induction of the key lipogenic genes fatty acid synthase (FASN) and stearoyl-CoA desaturase (SCD1). Consistent with these observations, the expression of the SREBF1, FASN, and SCD1 genes is significantly correlated in human prostate cancer tumor clinical specimens. Functionally, blockade of SREBF1 activity reduces the androgen-driven lipid accumulation. Interestingly, decreased triglyceride accumulation observed upon SREBF1 inhibition is paralleled by an increase in mitochondrial respiration, indicating a potential rewiring of citrate metabolism in prostate cancer cells. Altogether, these data define an AR/mTOR nuclear axis, in the context of prostate cancer, as a novel pathway regulating SREBF1 activity and citrate metabolism.Implications: The finding that an AR/mTOR complex promotes SREBF1 expression and activity enhances our understanding of the metabolic adaptation necessary for prostate cancer cell growth and suggests novel therapeutic approaches to target metabolic vulnerabilities in tumors. Mol Cancer Res; 16(9); 1396-405. ©2018 AACR.
Insights
Prostate cancer cells reprogram metabolism via androgen receptor (AR) and mTOR signaling, controlling sterol regulatory element-binding transcription factor 1 (SREBF1) to drive lipid synthesis and accumulation.
Area of Science:
- Oncology
- Cellular Metabolism
- Molecular Biology
Background:
- Prostate cancer exhibits significant metabolic reprogramming, particularly in lipid metabolism.
- Nuclear mTOR is crucial for androgen-mediated metabolic changes in prostate cancer cells.
Purpose of the Study:
- To elucidate the role of the androgen receptor (AR) and mTOR pathway in regulating SREBF1 and its downstream lipogenic targets in prostate cancer.
- To investigate the functional consequences of SREBF1 inhibition on lipid accumulation and mitochondrial respiration.
Main Methods:
- Investigated AR and mTOR binding to SREBF1 regulatory regions.
- Assessed SREBF1 cleavage and nuclear translocation upon androgen stimulation.
- Utilized pharmacologic and genetic inhibition of SREBF1 to study lipogenic gene expression (FASN, SCD1) and lipid accumulation.
- Correlated gene expression in human prostate cancer specimens.
- Measured mitochondrial respiration.
Main Results:
- AR and mTOR directly regulate SREBF1 expression and activity.
- Androgen stimulation promotes SREBF1 nuclear translocation, enhancing lipogenic gene expression.
- SREBF1 inhibition reduces androgen-driven lipid accumulation and triglyceride levels.
- SREBF1 blockade increases mitochondrial respiration, suggesting metabolic rewiring.
Conclusions:
- An AR/mTOR nuclear axis controls SREBF1 activity and citrate metabolism in prostate cancer.
- Targeting the AR/mTOR/SREBF1 pathway offers potential therapeutic strategies for prostate cancer by exploiting metabolic vulnerabilities.
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