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7-Dehydrocholesterol is an endogenous suppressor of ferroptosis

Author

Listed:
  • Florencio Porto Freitas

    (University of Würzburg)

  • Hamed Alborzinia

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance)

  • Ancély Ferreira dos Santos

    (University of Würzburg)

  • Palina Nepachalovich

    (University Hospital and Faculty of Medicine Carl Gustav Carus of TU Dresden)

  • Lohans Pedrera

    (University of Cologne)

  • Omkar Zilka

    (University of Ottawa)

  • Alex Inague

    (University of Würzburg
    Universidade de Sao Paulo)

  • Corinna Klein

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance)

  • Nesrine Aroua

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance)

  • Kamini Kaushal

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance)

  • Bettina Kast

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance)

  • Svenja M. Lorenz

    (Helmholtz Zentrum München)

  • Viktoria Kunz

    (Universitätsklinikum Würzburg)

  • Helene Nehring

    (University of Würzburg)

  • Thamara N. Xavier da Silva

    (University of Würzburg)

  • Zhiyi Chen

    (University of Würzburg)

  • Sena Atici

    (University of Würzburg)

  • Sebastian G. Doll

    (Helmholtz Zentrum München)

  • Emily L. Schaefer

    (University of Ottawa)

  • Ifedapo Ekpo

    (University of Ottawa)

  • Werner Schmitz

    (University of Würzburg)

  • Aline Horling

    (Martin Luther University Halle Wittenberg)

  • Peter Imming

    (Martin Luther University Halle Wittenberg)

  • Sayuri Miyamoto

    (Universidade de Sao Paulo)

  • Ann M. Wehman

    (University of Denver)

  • Thiago C. Genaro-Mattos

    (University of Nebraska Medical Center)

  • Karoly Mirnics

    (University of Nebraska Medical Center)

  • Lokender Kumar

    (Shoolini University)

  • Judith Klein-Seetharaman

    (Colorado School of Mines
    Arizona State University)

  • Svenja Meierjohann

    (University of Würzburg)

  • Isabel Weigand

    (Ludwig Maximillian University)

  • Matthias Kroiss

    (Ludwig Maximillian University)

  • Georg W. Bornkamm

    (University Hospital Ulm)

  • Fernando Gomes

    (Universidade de São Paulo)

  • Luis Eduardo Soares Netto

    (Universidade de São Paulo)

  • Manjima B. Sathian

    (Ludwig Maximilian University of Munich)

  • David B. Konrad

    (Ludwig Maximilian University of Munich)

  • Douglas F. Covey

    (Washington University in St. Louis
    Washington University)

  • Bernhard Michalke

    (Helmholtz Center München (HMGU))

  • Kurt Bommert

    (Universitätsklinikum Würzburg)

  • Ralf C. Bargou

    (Universitätsklinikum Würzburg)

  • Ana Garcia-Saez

    (University of Cologne)

  • Derek A. Pratt

    (University of Ottawa)

  • Maria Fedorova

    (University Hospital and Faculty of Medicine Carl Gustav Carus of TU Dresden)

  • Andreas Trumpp

    (Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM gGmbH)
    German Cancer Research Center (DKFZ) and DKFZ-ZMBH Alliance
    German Cancer Consortium (DKTK))

  • Marcus Conrad

    (Helmholtz Zentrum München)

  • José Pedro Friedmann Angeli

    (University of Würzburg)

Abstract

Ferroptosis is a form of cell death that has received considerable attention not only as a means to eradicate defined tumour entities but also because it provides unforeseen insights into the metabolic adaptation that tumours exploit to counteract phospholipid oxidation1,2. Here, we identify proferroptotic activity of 7-dehydrocholesterol reductase (DHCR7) and an unexpected prosurvival function of its substrate, 7-dehydrocholesterol (7-DHC). Although previous studies suggested that high concentrations of 7-DHC are cytotoxic to developing neurons by favouring lipid peroxidation3, we now show that 7-DHC accumulation confers a robust prosurvival function in cancer cells. Because of its far superior reactivity towards peroxyl radicals, 7-DHC effectively shields (phospho)lipids from autoxidation and subsequent fragmentation. We provide validation in neuroblastoma and Burkitt’s lymphoma xenografts where we demonstrate that the accumulation of 7-DHC is capable of inducing a shift towards a ferroptosis-resistant state in these tumours ultimately resulting in a more aggressive phenotype. Conclusively, our findings provide compelling evidence of a yet-unrecognized antiferroptotic activity of 7-DHC as a cell-intrinsic mechanism that could be exploited by cancer cells to escape ferroptosis.

Suggested Citation

  • Florencio Porto Freitas & Hamed Alborzinia & Ancély Ferreira dos Santos & Palina Nepachalovich & Lohans Pedrera & Omkar Zilka & Alex Inague & Corinna Klein & Nesrine Aroua & Kamini Kaushal & Bettina K, 2024. "7-Dehydrocholesterol is an endogenous suppressor of ferroptosis," Nature, Nature, vol. 626(7998), pages 401-410, February.
  • Handle: RePEc:nat:nature:v:626:y:2024:i:7998:d:10.1038_s41586-023-06878-9
    DOI: 10.1038/s41586-023-06878-9
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    Cited by:

    1. Nneka E. Mbah & Amy L. Myers & Peter Sajjakulnukit & Chan Chung & Joyce K. Thompson & Hanna S. Hong & Heather Giza & Derek Dang & Zeribe C. Nwosu & Mengrou Shan & Stefan R. Sweha & Daniella D. Maydan , 2024. "Therapeutic targeting of differentiation-state dependent metabolic vulnerabilities in diffuse midline glioma," Nature Communications, Nature, vol. 15(1), pages 1-21, December.

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