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Rapamycin regulates stearoyl CoA desaturase 1 expression in breast cancer
David Luyimbazi1, Argun Akcakanat, Priscilla F McAuliffe
1Department of Surgical Oncology, The University of Texas M.D. Anderson Cancer Center, Houston, Texas, USA.
Abstract:
Mammalian target of rapamycin (mTOR) signaling is a central regulator of protein translation, cell growth, and metabolism. Alterations of the mTOR signaling pathway are common in cancer, making mTOR a promising therapeutic target. In clinical trials, rapamycin analogs have shown modest response rates for most cancer types, including breast cancer. Therefore, there is an urgent need to better understand the mechanism of action of rapamycin to improve patient selection and to monitor pathway inhibition. To identify novel pharmacodynamic markers of rapamycin activity, we carried out transcriptional profiling of total and polysome-associated RNA in three breast cancer cell lines representing different subtypes. In all three cell lines, we found that rapamycin significantly decreased polysome-associated mRNA for stearoyl-CoA desaturase 1 (SCD1), the rate-limiting enzyme in monounsaturated fatty acid synthesis. Activators of mTOR increased SCD1 protein expression, whereas rapamycin, LY294002, and BEZ235 decreased SCD1 protein expression. Rapamycin decreased total SCD1 RNA expression without inducing a significant decline in its relative polysomal recruitment (polysome/total ratio). Rapamycin did not alter SCD1 mRNA stability. Instead, rapamycin inhibited SCD1 promoter activity and decreased expression of mature transcription factor sterol regulatory element binding protein 1 (SREBP1). Eukaryotic initiation factor 4E (eIF4E) small interfering RNA (siRNA) decreased both SCD1 and SREBP1 expression, suggesting that SCD1 may be regulated through the mTOR/eIF4E-binding protein 1 axis. Furthermore, SCD1 siRNA knockdown inhibited breast cancer cell growth, whereas overexpression increased growth. Taken together these findings show that rapamycin decreases SCD1 expression, establishing an important link between cell signaling and cancer cell fatty acid synthesis and growth.
Insights
Rapamycin, a cancer drug, reduces breast cancer cell growth by decreasing stearoyl-CoA desaturase 1 (SCD1) expression. This links mTOR signaling to fatty acid synthesis and cancer progression, aiding patient selection for targeted therapies.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Mammalian target of rapamycin (mTOR) signaling regulates cell growth and metabolism, and its dysregulation is implicated in cancer.
- Rapamycin analogs show modest efficacy in clinical trials for various cancers, including breast cancer, necessitating a deeper understanding of their mechanisms.
Purpose of the Study:
- To identify novel pharmacodynamic markers of rapamycin activity in breast cancer.
- To elucidate the mechanism by which rapamycin affects cancer cell growth and metabolism.
Main Methods:
- Transcriptional profiling of total and polysome-associated RNA in three breast cancer cell lines.
- Analysis of stearoyl-CoA desaturase 1 (SCD1) mRNA and protein expression following treatment with rapamycin and other inhibitors.
- Investigation of SCD1 regulation via promoter activity, transcription factors, and mRNA stability.
- Assessment of the impact of SCD1 knockdown and overexpression on breast cancer cell growth.
Main Results:
- Rapamycin significantly decreased polysome-associated mRNA for SCD1, the rate-limiting enzyme in monounsaturated fatty acid synthesis.
- Rapamycin inhibited SCD1 promoter activity and decreased sterol regulatory element binding protein 1 (SREBP1) expression, suggesting regulation via the mTOR/eIF4E-binding protein 1 axis.
- SCD1 knockdown inhibited breast cancer cell growth, while overexpression promoted it.
Conclusions:
- Rapamycin decreases SCD1 expression in breast cancer cells, linking mTOR signaling to cancer cell fatty acid synthesis and growth.
- SCD1 is a potential therapeutic target and pharmacodynamic marker for rapamycin-based cancer therapies.
- Understanding these molecular links can improve patient selection and monitoring for mTOR-targeted treatments.
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