Keap1 loss promotes Kras-driven lung cancer and results in dependence on glutaminolysis

KEAP1型 癌症研究 克拉斯 肺癌 生物 腺癌 调节器 谷氨酰胺 谷氨酰胺分解 癌症 谷氨酰胺酶 癌细胞 医学 结直肠癌 癌变 转录因子 肿瘤科 遗传学 基因 氨基酸
作者
Rodrigo Romero,Volkan I. Sayin,Shawn M. Davidson,Matthew R. Bauer,Simranjit X. Singh,Sarah E. LeBoeuf,Triantafyllia Karakousi,Donald C Ellis,Arjun Bhutkar,Francisco J. Sánchez‐Rivera,Lakshmipriya Subbaraj,Britney Martinez,Roderick T. Bronson,Justin R. Prigge,Edward E. Schmidt,Craig J. Thomas,Chandra Goparaju,Angela M. Davies,Igor Dolgalev,Adriana Heguy
出处
期刊:PMC
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摘要

Treating KRAS-mutant lung adenocarcinoma (LUAD) remains a major challenge in cancer treatment given the difficulties associated with directly inhibiting the KRAS oncoprotein. One approach to addressing this challenge is to define mutations that frequently co-occur with those in KRAS, which themselves may lead to therapeutic vulnerabilities in tumors. Approximately 20% of KRAS-mutant LUAD tumors carry loss-of-function mutations in the KEAP1 gene encoding Kelch-like ECH-associated protein 1 (refs. 2, 3, 4), a negative regulator of nuclear factor erythroid 2-like 2 (NFE2L2; hereafter NRF2), which is the master transcriptional regulator of the endogenous antioxidant response. The high frequency of mutations in KEAP1 suggests an important role for the oxidative stress response in lung tumorigenesis. Using a CRISPR-Cas9-based approach in a mouse model of KRAS-driven LUAD, we examined the effects of Keap1 loss in lung cancer progression. We show that loss of Keap1 hyperactivates NRF2 and promotes KRAS-driven LUAD in mice. Through a combination of CRISPR-Cas9-based genetic screening and metabolomic analyses, we show that Keap1- or Nrf2-mutant cancers are dependent on increased glutaminolysis, and this property can be therapeutically exploited through the pharmacological inhibition of glutaminase. Finally, we provide a rationale for stratification of human patients with lung cancer harboring KRAS/KEAP1- or KRAS/NRF2-mutant lung tumors as likely to respond to glutaminase inhibition.
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