Cold shock domain–containing protein E1 is a posttranscriptional regulator of the LDL receptor

Author:

Smith Geoffrey A.1ORCID,Padmanabhan Arun234,Lau Bryan H.5ORCID,Pampana Akhil67ORCID,Li Li8ORCID,Lee Clara Y.234ORCID,Pelonero Angelo4ORCID,Nishino Tomohiro4ORCID,Sadagopan Nandhini234,Xia Vivian Q.39ORCID,Jain Rajan810,Natarajan Pradeep6711ORCID,Wu Roland S.235ORCID,Black Brian L.5ORCID,Srivastava Deepak41213ORCID,Shokat Kevan M.114ORCID,Chorba John S.39ORCID

Affiliation:

1. Department of Cellular and Molecular Pharmacology, University of California, San Francisco, San Francisco, CA 94158, USA.

2. Division of Cardiology, UCSF Health, San Francisco, CA 94143, USA.

3. Department of Medicine, University of California, San Francisco, San Francisco, CA 94143, USA.

4. Gladstone Institute of Cardiovascular Disease, San Francisco, CA 94158, USA.

5. Cardiovascular Research Institute, University of California, San Francisco, San Francisco, CA 94158, USA.

6. Cardiovascular Research Center, Massachusetts General Hospital, Boston, MA 02114, USA.

7. Program in Medical and Population Genetics, Broad Institute of Harvard and MIT, Cambridge, MA 02142, USA.

8. Department of Medicine and Penn Cardiovascular Institute, University of Pennsylvania, Philadelphia, PA 19104, USA.

9. Division of Cardiology, Zuckerberg San Francisco General Hospital, San Francisco, CA 94110, USA.

10. Department of Cell and Developmental Biology, Institute of Regenerative Medicine, and Penn Epigenetics Institute, University of Pennsylvania, Philadelphia, PA 19104, USA.

11. Department of Medicine, Harvard Medical School, Boston, MA 02114, USA.

12. Departments of Pediatrics and Biochemistry and Biophysics, University of California, San Francisco, San Francisco, CA 94143, USA.

13. Roddenberry Center for Stem Cell Biology and Medicine at Gladstone, San Francisco, CA 94158, USA.

14. Howard Hughes Medical Institute, University of California, San Francisco, San Francisco, CA 94143, USA.

Abstract

The low-density lipoprotein receptor (LDLR) controls cellular delivery of cholesterol and clears LDL from the bloodstream, protecting against atherosclerotic heart disease, the leading cause of death in the United States. We therefore sought to identify regulators of the LDLR beyond the targets of current therapies and known causes of familial hypercholesterolemia. We found that cold shock domain–containing protein E1 (CSDE1) enhanced hepatic LDLR messenger RNA (mRNA) decay via its 3′ untranslated region and regulated atherogenic lipoproteins in vivo. Using parallel phenotypic genome-wide CRISPR interference screens in a tissue culture model, we identified 40 specific regulators of the LDLR that were not previously identified by observational human genetic studies. Among these, we demonstrated that, in HepG2 cells, CSDE1 regulated the LDLR at least as strongly as statins and proprotein convertase subtilisin/kexin type 9 (PCSK9) inhibitors. In addition, we showed that hepatic gene silencing of Csde1 treated diet-induced dyslipidemia in mice to a similar degree as Pcsk9 silencing. These results suggest the therapeutic potential of targeting CSDE1 to manipulate the posttranscriptional regulation of the LDLR mRNA for the prevention of cardiovascular disease. Our approach of modeling a clinically relevant phenotype in a forward genetic screen, followed by mechanistic pharmacologic dissection and in vivo validation, may serve as a generalizable template for the identification of therapeutic targets in other human disease states.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

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