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Sequencing Small Non-coding RNA from Formalin-fixed Tissues and Serum-derived Exosomes from Castration-resistant Prostate Cancer Patients
Published on: November 19, 2019
Asparagine Dependency Is a Targetable Metabolic Vulnerability in TP53-Altered Castration-Resistant Prostate Cancer
Young A Yoo1,2, Songhua Quan1, William Yang1
1Department of Urology, Northwestern University Feinberg School of Medicine, Chicago, Illinois.
Abstract:
TP53 tumor suppressor is frequently altered in lethal, castration-resistant prostate cancer (CRPC). However, to date there are no effective treatments that specifically target TP53 alterations. Using transcriptomic and metabolomic analyses, we have shown here that TP53-altered prostate cancer exhibits an increased dependency on asparagine (Asn) and overexpresses Asn synthetase (ASNS), the enzyme catalyzing the synthesis of Asn. Mechanistically, the loss or mutation of TP53 transcriptionally activated ASNS expression, directly and via mTORC1-mediated ATF4 induction, driving de novo Asn biosynthesis to support CRPC growth. TP53-altered CRPC cells were sensitive to Asn restriction by knockdown of ASNS or L-asparaginase treatment to deplete the intracellular and extracellular sources of Asn, respectively, and cell viability was rescued by Asn addition. Notably, pharmacological inhibition of intracellular Asn biosynthesis using a glutaminase inhibitor and depletion of extracellular Asn with L-asparaginase significantly reduced Asn production and effectively impaired CRPC growth. This study highlights the significance of ASNS-mediated metabolic adaptation as a synthetic vulnerability in CRPC with TP53 alterations, providing a rationale for targeting Asn production to treat these lethal prostate cancers. Significance: TP53-mutated castration-resistant prostate cancer is dependent on asparagine biosynthesis due to upregulation of ASNS and can be therapeutically targeted by approaches that deplete intracellular and extracellular asparagine.
Insights
TP53-altered prostate cancer relies on asparagine (Asn) synthesis due to increased Asn synthetase (ASNS) expression. Targeting Asn production offers a new therapeutic strategy for castration-resistant prostate cancer.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer biology
Background:
- TP53 tumor suppressor alterations are common in lethal castration-resistant prostate cancer (CRPC).
- Current treatments for TP53-altered CRPC are limited.
- Prostate cancer progression involves metabolic adaptations.
Purpose of the Study:
- To investigate the metabolic dependencies of TP53-altered CRPC.
- To identify therapeutic targets for CRPC with TP53 alterations.
Main Methods:
- Transcriptomic and metabolomic analyses were performed.
- ASNS expression and its regulation by TP53 were studied.
- The effects of asparagine restriction and supplementation on CRPC cells were evaluated.
- Pharmacological inhibitors of asparagine biosynthesis were tested.
Main Results:
- TP53-altered CRPC exhibits increased dependency on asparagine (Asn) and overexpresses Asn synthetase (ASNS).
- Loss or mutation of TP53 upregulates ASNS via direct transcriptional activation and mTORC1-mediated ATF4 induction.
- CRPC cells with TP53 alterations are sensitive to Asn restriction through ASNS knockdown or L-asparaginase treatment.
- Inhibition of Asn biosynthesis pathways significantly impairs CRPC growth.
Conclusions:
- ASNS-mediated Asn biosynthesis is a critical metabolic adaptation and synthetic vulnerability in TP53-altered CRPC.
- Targeting Asn production, by inhibiting intracellular biosynthesis or depleting extracellular Asn, represents a promising therapeutic strategy for CRPC with TP53 alterations.
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