Adipose triglyceride lipase is a therapeutic target in advanced prostate cancer that promotes metabolic plasticity

Author:

Awad Dominik1ORCID,Cao Pham Hong Anh1ORCID,Pulliam Thomas L.1ORCID,Spradlin Meredith2ORCID,Subramani Elavarasan3ORCID,Tellman Tristen V.4ORCID,Ribeiro Caroline F.5ORCID,Muzzioli Riccardo6ORCID,Jewell Brittany E.1ORCID,Pakula Hubert5ORCID,Ackroyd Jeffrey J.1ORCID,Murray Mollianne M.1ORCID,Han Jenny J.1ORCID,Leng Mei7ORCID,Jain Antrix8ORCID,Piyarathna Badrajee9ORCID,Liu JIngjing10ORCID,Song Xingzhi3ORCID,Zhang Jianhua11ORCID,Klekers Albert R.1ORCID,Drake Justin M.12ORCID,Ittmann Michael M.7ORCID,Coarfa Cristian7ORCID,Piwnica-Worms David6ORCID,Farach-Carson Mary C.13ORCID,Loda Massimo5ORCID,S. Eberlin Livia7ORCID,Frigo Daniel E.1ORCID

Affiliation:

1. The University of Texas MD Anderson Cancer Center, Houston, TX, United States

2. The University of Texas at Austin, Austin, TX, United States

3. The University of Texas MD Anderson Cancer Center, Houston, Texas, United States

4. American Association For Cancer Research, Washington, DC, United States

5. Weill Cornell Medicine, New York, NY, United States

6. UT MD Anderson Cancer Center, Houston, TX, United States

7. Baylor College of Medicine, Houston, TX, United States

8. Baylor College of Medicine, HOUSTON, United States

9. Baylor College of Medicine, United States

10. The University of Texas MD Anderson Cancer Center, United States

11. The University of Texas MD Anderson Cancer Center, Houston,

12. University of Minnesota Medical School, Minneapolis, MN, United States

13. The University of Texas Health Science Center at Houston School of Dentistry, Houston, TX, United States

Abstract

Abstract Lipid metabolism plays a central role in prostate cancer. To date, the major focus has centered on de novo lipogenesis and lipid uptake in prostate cancer, but inhibitors of these processes have not benefited patients. Better understanding of how cancer cells access lipids once they are created or taken up and stored could uncover more effective strategies to perturb lipid metabolism and treat patients. Here, we identified that expression of adipose triglyceride lipase (ATGL), an enzyme that controls lipid droplet homeostasis and a previously suspected tumor suppressor, correlates with worse overall survival in men with advanced, castration-resistant prostate cancer (CRPC). Molecular, genetic, or pharmacological inhibition of ATGL impaired human and murine prostate cancer growth in vivo and in cell culture or organoids under conditions mimicking the tumor microenvironment. Mass spectrometry imaging demonstrated ATGL profoundly regulates lipid metabolism in vivo, remodeling membrane composition. ATGL inhibition induced metabolic plasticity, causing a glycolytic shift that could be exploited therapeutically by co-targeting both metabolic pathways. Patient-derived phosphoproteomics identified ATGL serine 404 as a target of CAMKK2-AMPK signaling in CRPC cells. Mutation of serine 404 did not alter the lipolytic activity of ATGL but did decrease CRPC growth, migration, and invasion, indicating that non-canonical ATGL activity also contributes to disease progression. Unbiased immunoprecipitation/mass spectrometry suggested that mutation of serine 404 not only disrupts existing ATGL protein interactions but also leads to new protein-protein interactions. Together, these data nominate ATGL as a therapeutic target for CRPC and provide insights for future drug development and combination therapies.

Publisher

American Association for Cancer Research (AACR)

Subject

Cancer Research,Oncology

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