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胶质母细胞瘤中细胞状态特异性的对GPX4依赖性铁死亡的代谢易感性。

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

作者信息

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

机构信息

Department of Neurological Surgery, Columbia University Irving Medical Center, New York, NY, USA.

Department of Pathology and Cell Biology, Columbia University Irving Medical Center, New York, NY, USA.

出版信息

bioRxiv. 2023 Feb 23:2023.02.22.529581. doi: 10.1101/2023.02.22.529581.

Abstract

Glioma 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.

摘要

胶质瘤细胞劫持发育转录程序来控制细胞状态。在神经发育过程中,谱系轨迹依赖于特定的代谢途径。然而,在胶质瘤中,肿瘤细胞状态与代谢程序之间的联系却鲜为人知。在此,我们发现了一种胶质瘤细胞状态特异性的代谢弱点,可用于治疗。为了模拟细胞状态多样性,我们构建了基因工程小鼠胶质瘤模型,该模型通过单独缺失p53(p53)或与组成型激活的Notch信号(N1IC)一起诱导产生,Notch信号是控制细胞命运的关键途径。N1IC肿瘤含有静止的星形胶质细胞样转化细胞状态,而p53肿瘤主要由增殖的祖细胞样细胞状态组成。N1IC细胞表现出明显的代谢改变,线粒体解偶联和活性氧产生增加,使其对脂质氢过氧化物酶GPX4的抑制和铁死亡的诱导更为敏感。重要的是,用GPX4抑制剂处理患者来源的器官型切片可诱导具有相似代谢特征的静止星形胶质细胞样胶质瘤细胞群体的选择性消耗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68d7/9980114/be2ba0bc7bc1/nihpp-2023.02.22.529581v1-f0001.jpg

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