Bile Acid Metabolism Mediates Cholesterol Homeostasis and Promotes Tumorigenesis in Clear Cell Renal Cell Carcinoma

Author:

Riscal Romain12ORCID,Gardner Sarah M.13ORCID,Coffey Nathan J.1ORCID,Carens Madeleine1ORCID,Mesaros Clementina4ORCID,Xu Jimmy P.4ORCID,Xue Yizheng15ORCID,Davis Leah1ORCID,Demczyszyn Sara1ORCID,Vogt Austin1ORCID,Olia Adam1ORCID,Finan Jennifer M.1ORCID,Godfrey Jason1ORCID,Schultz David C.6ORCID,Blair Ian A.4ORCID,Keith Brian1ORCID,Marmorstein Ronen17ORCID,Skuli Nicolas18ORCID,Simon M. Celeste19ORCID

Affiliation:

1. 1Abramson Family Cancer Research Institute, University of Pennsylvania, Philadelphia, Pennsylvania.

2. 2IRCM, Institut de Recherche en Cancérologie de Montpellier, INSERM U1194, Université de Montpellier, Institut régional du Cancer de Montpellier, Montpellier, France.

3. 3Department of Biochemistry and Biophysics, Graduate Group in Biochemistry and Molecular Biophysics, Perelman School of Medicine University of Pennsylvania, Philadelphia, Pennsylvania.

4. 4Centers for Cancer Pharmacology and Excellence in Environmental Toxicology, Department of Pharmacology, University of Pennsylvania, Philadelphia, Pennsylvania.

5. 5Department of Urology, Ren Ji Hospital, Shanghai, P.R. China.

6. 6Department of Biochemistry and Biophysics, High-throughput Screening Core, University of Pennsylvania, Philadelphia, Pennsylvania.

7. 7Department of Biochemistry and Biophysics, University of Pennsylvania, Philadelphia, Pennsylvania.

8. 8Stem Cell and Xenograft Core, University of Pennsylvania, Philadelphia, Pennsylvania.

9. 9Departement of Cell and Developmental Biology, University of Pennsylvania, Philadelphia, Pennsylvania.

Abstract

Abstract Clear cell renal cell carcinoma (ccRCC) incidence has risen steadily over the last decade. Elevated lipid uptake and storage is required for ccRCC cell viability. As stored cholesterol is the most abundant component in ccRCC intracellular lipid droplets, it may also play an important role in ccRCC cellular homeostasis. In support of this hypothesis, ccRCC cells acquire exogenous cholesterol through the high-density lipoprotein receptor SCARB1, inhibition or suppression of which induces apoptosis. Here, we showed that elevated expression of 3 beta-hydroxy steroid dehydrogenase type 7 (HSD3B7), which metabolizes cholesterol-derived oxysterols in the bile acid biosynthetic pathway, is also essential for ccRCC cell survival. Development of an HSD3B7 enzymatic assay and screening for small-molecule inhibitors uncovered the compound celastrol as a potent HSD3B7 inhibitor with low micromolar activity. Repressing HSD3B7 expression genetically or treating ccRCC cells with celastrol resulted in toxic oxysterol accumulation, impaired proliferation, and increased apoptosis in vitro and in vivo. These data demonstrate that bile acid synthesis regulates cholesterol homeostasis in ccRCC and identifies HSD3B7 as a plausible therapeutic target. Significance: The bile acid biosynthetic enzyme HSD3B7 is essential for ccRCC cell survival and can be targeted to induce accumulation of cholesterol-derived oxysterols and apoptotic cell death.

Funder

National Cancer Institute

Damon Runyon Cancer Research Foundation

National Institute of General Medical Sciences

National Institute of Environmental Health Sciences

Publisher

American Association for Cancer Research (AACR)

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