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A cell state specific metabolic vulnerability to GPX4-dependent ferroptosis in glioblastoma

Authors :
Matei A. Banu
Athanassios Dovas
Michael G. Argenziano
Wenting Zhao
Henar Cuervo Grajal
Dominique M.O. Higgins
Colin P. Sperring
Brianna Pereira
Ling F. Ye
Aayushi Mahajan
Nelson Humala
Julia L. Furnari
Pavan S. Upadhyayula
Fereshteh Zandkarimi
Trang T. T. Nguyen
Peter B. Wu
Li Hai
Charles Karan
Aida Razavilar
Markus D. Siegelin
Jan Kitajewski
Jeffrey N. Bruce
Brent R. Stockwell
Peter A. Sims
Peter D. Canoll
Source :
bioRxiv
Publication Year :
2023
Publisher :
Cold Spring Harbor Laboratory, 2023.

Abstract

SUMMARYGlioma cells hijack developmental transcriptional programs to control cell state. During neural development, lineage trajectories rely on specialized metabolic pathways. However, the link between tumor cell state and metabolic programs is poorly understood in glioma. Here we uncover a glioma cell state-specific metabolic liability that can be leveraged therapeutically. To model cell state diversity, we generated genetically engineered murine gliomas, induced by deletion of p53 alone (p53) or with constitutively active Notch signaling (N1IC), a pathway critical in controlling cellular fate. N1IC tumors harbored quiescent astrocyte-like transformed cell states while p53 tumors were predominantly comprised of proliferating progenitor-like cell states. N1IC cells exhibit distinct metabolic alterations, with mitochondrial uncoupling and increased ROS production rendering them more sensitive to inhibition of the lipid hydroperoxidase GPX4 and induction of ferroptosis. Importantly, treating patient-derived organotypic slices with a GPX4 inhibitor induced selective depletion of quiescent astrocyte-like glioma cell populations with similar metabolic profiles.

Subjects

Subjects :
Article

Details

Database :
OpenAIRE
Journal :
bioRxiv
Accession number :
edsair.doi.dedup.....2d307a66d6e7e7bb3360567afe6f972d
Full Text :
https://doi.org/10.1101/2023.02.22.529581