MYCN-Amplified Neuroblastoma Is Addicted to Iron and Vulnerable to Inhibition of the System Xc-/Glutathione Axis

神经母细胞瘤 奥兰诺芬 活性氧 谷胱甘肽 癌症研究 药理学 转铁蛋白受体 生物 化学 医学 生物化学 受体 免疫学 细胞培养 遗传学 类风湿性关节炎
作者
Konstantinos V. Floros,Jinyang Cai,Sheeba Jacob,Richard Kurupi,Carter K. Fairchild,Mayuri Shende,Colin M. Coon,Krista M. Powell,Benjamin Ross Belvin,Bin Hu,Madhavi Puchalapalli,Sivapriya Ramamoorthy,Kimberly Swift,Janina P. Lewis,Mikhail G. Dozmorov,John Glod,Jennifer E. Koblinski,Sosipatros A. Boikos,Anthony C. Faber
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:81 (7): 1896-1908 被引量:62
标识
DOI:10.1158/0008-5472.can-20-1641
摘要

MYCN is amplified in 20% to 25% of neuroblastoma, and MYCN-amplified neuroblastoma contributes to a large percent of pediatric cancer-related deaths. Therapy improvements for this subtype of cancer are a high priority. Here we uncover a MYCN-dependent therapeutic vulnerability in neuroblastoma. Namely, amplified MYCN rewires the cell through expression of key receptors, ultimately enhancing iron influx through increased expression of the iron import transferrin receptor 1. Accumulating iron causes reactive oxygen species (ROS) production, and MYCN-amplified neuroblastomas show enhanced reliance on the system Xc- cystine/glutamate antiporter for ROS detoxification through increased transcription of this receptor. This dependence creates a marked vulnerability to targeting the system Xc-/glutathione (GSH) pathway with ferroptosis inducers. This reliance can be exploited through therapy with FDA-approved rheumatoid arthritis drugs sulfasalazine (SAS) and auranofin: in MYCN-amplified, patient-derived xenograft models, both therapies blocked growth and induced ferroptosis. SAS and auranofin activity was largely mitigated by the ferroptosis inhibitor ferrostatin-1, antioxidants like N-acetyl-L-cysteine, or by the iron scavenger deferoxamine (DFO). DFO reduced auranofin-induced ROS, further linking increased iron capture in MYCN-amplified neuroblastoma to a therapeutic vulnerability to ROS-inducing drugs. These data uncover an oncogene vulnerability to ferroptosis caused by increased iron accumulation and subsequent reliance on the system Xc-/GSH pathway. SIGNIFICANCE: This study shows how MYCN increases intracellular iron levels and subsequent GSH pathway activity and demonstrates the antitumor activity of FDA-approved SAS and auranofin in patient-derived xenograft models of MYCN-amplified neuroblastoma.

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