生物
花生四烯酸
突变体
脂肪酸代谢
二酰甘油激酶
磷脂酶A2
表型
PI3K/AKT/mTOR通路
代谢途径
生物化学
细胞生物学
mTORC1型
新陈代谢
CYP2C8
信号转导
细胞色素P450
蛋白激酶C
基因
酶
CYP2C9
作者
Nikos Koundouros,Evdoxia Karali,Aurélien Tripp,Adamo Valle,Paolo Inglese,Nicholas J. S. Perry,David J. Magee,Sara Anjomani Virmouni,George A. Elder,Adam L. Tyson,M. Luísa Dória,Antoinette van Weverwijk,Renata F. Soares,Clare M. Isacke,Jeremy K. Nicholson,Robert C. Glen,Zoltán Takáts,George Poulogiannis
出处
期刊:Cell
[Cell Press]
日期:2020-06-01
卷期号:181 (7): 1596-1611.e27
被引量:120
标识
DOI:10.1016/j.cell.2020.05.053
摘要
Oncogenic transformation is associated with profound changes in cellular metabolism, but whether tracking these can improve disease stratification or influence therapy decision-making is largely unknown. Using the iKnife to sample the aerosol of cauterized specimens, we demonstrate a new mode of real-time diagnosis, coupling metabolic phenotype to mutant PIK3CA genotype. Oncogenic PIK3CA results in an increase in arachidonic acid and a concomitant overproduction of eicosanoids, acting to promote cell proliferation beyond a cell-autonomous manner. Mechanistically, mutant PIK3CA drives a multimodal signaling network involving mTORC2-PKCζ-mediated activation of the calcium-dependent phospholipase A2 (cPLA2). Notably, inhibiting cPLA2 synergizes with fatty acid-free diet to restore immunogenicity and selectively reduce mutant PIK3CA-induced tumorigenicity. Besides highlighting the potential for metabolic phenotyping in stratified medicine, this study reveals an important role for activated PI3K signaling in regulating arachidonic acid metabolism, uncovering a targetable metabolic vulnerability that largely depends on dietary fat restriction. VIDEO ABSTRACT.
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