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致癌性 R132 IDH1 突变通过(D)2-羟戊二酸产生限制纤维肉瘤中的 NADPH 用于从头脂肪生成。

Oncogenic R132 IDH1 Mutations Limit NADPH for De Novo Lipogenesis through (D)2-Hydroxyglutarate Production in Fibrosarcoma Sells.

机构信息

Department of Bioengineering, University of California, San Diego, La Jolla, CA 92037, USA.

Department of Pharmacology, University of California, San Diego, La Jolla, CA 92037, USA; Moores Cancer Center, University of California, San Diego, La Jolla, CA 92037, USA.

出版信息

Cell Rep. 2018 Oct 23;25(4):1018-1026.e4. doi: 10.1016/j.celrep.2018.09.074.

Abstract

Neomorphic mutations in NADP-dependent isocitrate dehydrogenases (IDH1 and IDH2) contribute to tumorigenesis in several cancers. Although significant research has focused on the hypermethylation phenotypes associated with (D)2-hydroxyglutarate (D2HG) accumulation, the metabolic consequences of these mutations may also provide therapeutic opportunities. Here we apply flux-based approaches to genetically engineered cell lines with an endogenous IDH1 mutation to examine the metabolic impacts of increased D2HG production and altered IDH flux as a function of IDH1 mutation or expression. D2HG synthesis in IDH1-mutant cells consumes NADPH at rates similar to de novo lipogenesis. IDH1-mutant cells exhibit increased dependence on exogenous lipid sources for in vitro growth, as removal of medium lipids slows growth more dramatically in IDH1-mutant cells compared with those expressing wild-type or enzymatically inactive alleles. NADPH regeneration may be limiting for lipogenesis and potentially redox homeostasis in IDH1-mutant cells, highlighting critical links between cellular biosynthesis and redox metabolism.

摘要

NADP 依赖性异柠檬酸脱氢酶(IDH1 和 IDH2)的新形态突变导致多种癌症的肿瘤发生。尽管大量研究集中在与(D)2-羟基戊二酸(D2HG)积累相关的高甲基化表型上,但这些突变的代谢后果也可能提供治疗机会。在这里,我们应用通量测定方法研究具有内源性 IDH1 突变的基因工程细胞系,以检查增加的 D2HG 产生和改变的 IDH 通量的代谢影响,作为 IDH1 突变或表达的函数。IDH1 突变细胞中 D2HG 的合成以类似于从头脂肪生成的速率消耗 NADPH。IDH1 突变细胞对外源脂质来源的依赖性增加,因为与表达野生型或酶失活等位基因的细胞相比,从中性脂质中去除培养基脂质会使 IDH1 突变细胞的生长更明显地减慢。NADPH 的再生可能限制了 IDH1 突变细胞的脂肪生成和潜在的氧化还原平衡,突出了细胞生物合成和氧化还原代谢之间的关键联系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d16/6613636/5e30c40af960/nihms-1511532-f0002.jpg

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