A HIF independent oxygen-sensitive pathway for controlling cholesterol synthesis

Author:

Dickson Anna1ORCID,Pauzaite Tekle1,Arnaiz Esther1,Ortmann Brian2,West James3,Volkmar Norbert4,Martinelli Anthony1ORCID,Li Zhaoqi5,Wit Niek1,Vitkup Dennis,Kaser Arthur6ORCID,Lehner Paul1ORCID,Nathan James7ORCID

Affiliation:

1. CITIID

2. Cambridge Institute of Therapeutic Immunology & Infectious Disease, University of Cambridge

3. Cambridge University

4. ETH Zurich

5. Massachusetts Institute of Technology

6. University of Cambridge

7. Cambridge Institute of Therapeutic Immunology and Infectious Disease, University of Cambridge

Abstract

Abstract Cholesterol biosynthesis is a highly regulated, oxygen-dependent pathway, vital for cell membrane integrity and growth. In fungi, the dependency on oxygen for sterol production has resulted in a shared transcriptional response, resembling prolyl hydroxylation of Hypoxia Inducible Factors (HIFs) in metazoans. Whether an analogous metazoan pathway exists is unknown. Here, we identify Sterol Regulatory Element Binding Protein 2 (SREBP2), the key transcription factor driving sterol production in mammals, as an oxygen-sensitive regulator of cholesterol synthesis. SREBP2 degradation in hypoxia overrides the normal sterol-sensing response, and is HIF independent. We identify MARCHF6, through its NADPH-mediated activation in hypoxia, as the main ubiquitin ligase controlling SREBP2 stability. Hypoxia-mediated degradation of SREBP2 protects cells from statin-induced cell death by forcing cells to rely on exogenous cholesterol uptake, explaining why many solid organ tumours become auxotrophic for cholesterol. Our findings therefore uncover an oxygen-sensitive pathway for governing cholesterol synthesis through regulated SREBP2-dependent protein degradation.

Publisher

Research Square Platform LLC

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