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Fatty acid synthase (FASN) regulates the mitochondrial priming of cancer cells
Barbara Schroeder1,2,3, Travis Vander Steen1, Ingrid Espinoza4,5
1Division of Experimental Pathology, Department of Laboratory Medicine and Pathology, Mayo Clinic, Rochester, MN, 55905, USA.
Abstract:
Inhibitors of the lipogenic enzyme fatty acid synthase (FASN) have attracted much attention in the last decade as potential targeted cancer therapies. However, little is known about the molecular determinants of cancer cell sensitivity to FASN inhibitors (FASNis), which is a major roadblock to their therapeutic application. Here, we find that pharmacological starvation of endogenously produced FAs is a previously unrecognized metabolic stress that heightens mitochondrial apoptotic priming and favors cell death induction by BH3 mimetic inhibitors. Evaluation of the death decision circuits controlled by the BCL-2 family of proteins revealed that FASN inhibition is accompanied by the upregulation of the pro-death BH3-only proteins BIM, PUMA, and NOXA. Cell death triggered by FASN inhibition, which causally involves a palmitate/NADPH-related redox imbalance, is markedly diminished by concurrent loss of BIM or PUMA, suggesting that FASN activity controls cancer cell survival by fine-tuning the BH3 only proteins-dependent mitochondrial threshold for apoptosis. FASN inhibition results in a heightened mitochondrial apoptosis priming, shifting cells toward a primed-for-death state "addicted" to the anti-apoptotic protein BCL-2. Accordingly, co-administration of a FASNi synergistically augments the apoptosis-inducing activity of the dual BCL-XL/BCL-2 inhibitor ABT-263 (navitoclax) and the BCL-2 specific BH3-mimetic ABT-199 (venetoclax). FASN inhibition, however, fails to sensitize breast cancer cells to MCL-1- and BCL-XL-selective inhibitors such as S63845 and A1331852. A human breast cancer xenograft model evidenced that oral administration of the only clinically available FASNi drastically sensitizes FASN-addicted breast tumors to ineffective single-agents navitoclax and venetoclax in vivo. In summary, a novel FASN-driven facet of the mitochondrial priming mechanistically links the redox-buffering mechanism of FASN activity to the intrinsic apoptotic threshold in breast cancer cells. Combining next-generation FASNis with BCL-2-specific BH3 mimetics that directly activate the apoptotic machinery might generate more potent and longer-lasting antitumor responses in a clinical setting.
Insights
Fatty acid synthase inhibitors create metabolic stress, increasing cancer cell sensitivity to apoptosis-inducing drugs. Combining FASN inhibitors with BCL-2 inhibitors enhances anti-cancer effects, offering new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Pathways
Background:
- Fatty acid synthase (FASN) inhibitors are investigated as targeted cancer therapies.
- Molecular mechanisms of cancer cell sensitivity to FASN inhibitors are poorly understood.
- Understanding these mechanisms is crucial for therapeutic development.
Purpose of the Study:
- To investigate the molecular determinants of cancer cell sensitivity to FASN inhibitors.
- To explore the interplay between FASN inhibition, metabolic stress, and apoptosis.
- To evaluate combination therapies involving FASN inhibitors and BH3 mimetics.
Main Methods:
- Pharmacological FASN inhibition in cancer cells.
- Analysis of BCL-2 family protein expression and function.
- Assessment of mitochondrial apoptotic priming.
- In vivo studies using a human breast cancer xenograft model.
Main Results:
- FASN inhibition induces metabolic stress, enhancing mitochondrial apoptotic priming.
- FASN inhibition upregulates pro-death BH3-only proteins BIM, PUMA, and NOXA.
- Combined FASN and BCL-2 inhibition synergistically increases apoptosis.
- FASN inhibition sensitizes tumors to BCL-2-specific BH3 mimetics in vivo.
Conclusions:
- FASN activity regulates the intrinsic apoptotic threshold via BH3-only proteins.
- FASN inhibition creates a state of addiction to anti-apoptotic protein BCL-2.
- Combination of FASN inhibitors and BCL-2-specific BH3 mimetics shows therapeutic promise for breast cancer.
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