A cell state-specific metabolic vulnerability to GPX4-dependent ferroptosis in glioblastoma
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Published:2024-08-27
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ISSN:1460-2075
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Container-title:The EMBO Journal
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language:en
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Short-container-title:EMBO J
Author:
Banu Matei AORCID, Dovas Athanassios, Argenziano Michael G, Zhao WentingORCID, Sperring Colin P, Cuervo Grajal HenarORCID, Liu Zhouzerui, Higgins Dominique MO, Amini Misha, Pereira Brianna, Ye Ling F, Mahajan Aayushi, Humala Nelson, Furnari Julia L, Upadhyayula Pavan S, Zandkarimi Fereshteh, Nguyen Trang TTORCID, Teasley Damian, Wu Peter B, Hai Li, Karan Charles, Dowdy Tyrone, Razavilar Aida, Siegelin Markus DORCID, Kitajewski Jan, Larion MioaraORCID, Bruce Jeffrey NORCID, Stockwell Brent RORCID, Sims Peter AORCID, Canoll PeterORCID
Abstract
AbstractGlioma cells hijack developmental programs to control cell state. Here, we uncover a glioma cell state-specific metabolic liability that can be therapeutically targeted. To model cell conditions at brain tumor inception, we generated genetically engineered murine gliomas, with deletion of p53 alone (p53) or with constitutively active Notch signaling (N1IC), a pathway critical in controlling astrocyte differentiation during brain development. N1IC tumors harbored quiescent astrocyte-like transformed cell populations while p53 tumors were predominantly comprised of proliferating progenitor-like cell states. Further, N1IC transformed cells exhibited increased mitochondrial lipid peroxidation, high ROS production and depletion of reduced glutathione. This altered mitochondrial phenotype rendered the astrocyte-like, quiescent populations more sensitive to pharmacologic or genetic inhibition of the lipid hydroperoxidase GPX4 and induction of ferroptosis. Treatment of patient-derived early-passage cell lines and glioma slice cultures generated from surgical samples with a GPX4 inhibitor induced selective depletion of quiescent astrocyte-like glioma cell populations with similar metabolic profiles. Collectively, these findings reveal a specific therapeutic vulnerability to ferroptosis linked to mitochondrial redox imbalance in a subpopulation of quiescent astrocyte-like glioma cells resistant to standard forms of treatment.
Funder
HHS | NIH | National Institute of Neurological Disorders and Stroke HHS | National Institutes of Health HHS | NIH | National Cancer Institute
Publisher
Springer Science and Business Media LLC
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