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脂肪酸合酶缺乏诱导柠檬酸从胞质溶胶向线粒体的通量,以减轻脱离诱导的氧化应激。

FASN-deficiency induces a cytosol-to-mitochondria citrate flux to mitigate detachment-induced oxidative stress.

作者信息

Dai Wenting, Wang Zhichao, Wang Guan, Wang Qiong A, DeBerardinis Ralph, Jiang Lei

出版信息

bioRxiv. 2023 Mar 15:2023.03.14.532533. doi: 10.1101/2023.03.14.532533.

Abstract

Fatty acid synthase (FASN) maintains lipogenesis (DNL) to support rapid growth in most proliferating cancer cells. Lipogenic acetyl-CoA is primarily produced from carbohydrates but can arise from glutamine-dependent reductive carboxylation under hypoxia. Here we show that reductive carboxylation also occurs in the absence of DNL in cells with defective FASN. In this state, reductive carboxylation was mainly catalyzed by isocitrate dehydrogenase-1 (IDH1) in the cytosol, but IDH1-generated citrate was not used for DNL. Metabolic flux analysis (MFA) revealed that FASN-deficiency induced a net cytosol-to-mitochondria citrate flux through citrate transport protein (CTP). A similar pathway was previously shown to mitigate detachment-induced mitochondrial reactive oxygen species (mtROS) in anchorage-independent tumor spheroids. We further demonstrate that FASN-deficient cells acquire resistance to oxidative stress in a CTP- and IDH1-dependent manner. Together with the reduced FASN activity in tumor spheroids, these data indicate that anchorage-independent malignant cells trade FASN-supported rapid growth for a cytosol-to-mitochondria citrate flux to gain redox capacity against detachment-induced oxidative stress.

摘要

脂肪酸合酶(FASN)维持脂肪生成(DNL)以支持大多数增殖癌细胞的快速生长。生脂乙酰辅酶A主要由碳水化合物产生,但在缺氧情况下可由谷氨酰胺依赖性还原羧化作用产生。在这里,我们表明,在FASN缺陷的细胞中,即使不存在DNL,还原羧化作用也会发生。在这种状态下,还原羧化作用主要由胞质中的异柠檬酸脱氢酶-1(IDH1)催化,但IDH1产生的柠檬酸并不用于DNL。代谢通量分析(MFA)显示,FASN缺陷会通过柠檬酸转运蛋白(CTP)诱导柠檬酸从胞质到线粒体的净通量。先前已证明,类似的途径可减轻非锚定依赖性肿瘤球体中脱离诱导的线粒体活性氧(mtROS)。我们进一步证明,FASN缺陷细胞以CTP和IDH1依赖性方式获得对氧化应激的抗性。连同肿瘤球体中FASN活性的降低,这些数据表明,非锚定依赖性恶性细胞用FASN支持的快速生长换取了柠檬酸从胞质到线粒体的通量,以获得针对脱离诱导的氧化应激的氧化还原能力。

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