在肝细胞癌中靶向醛缩酶A会导致不平衡的糖酵解和能量应激,因为不受控制的FBP积累

IF 18.9 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Marteinn T. Snaebjornsson, Philipp Poeller, Daria Komkova, Florian Röhrig, Lisa Schlicker, Alina M. Winkelkotte, Adriano B. Chaves-Filho, Kamal M. Al-Shami, Carolina Dehesa Caballero, Ioanna Koltsaki, Felix C. E. Vogel, Roberto Carlos Frias-Soler, Ramona Rudalska, Jessica D. Schwarz, Elmar Wolf, Daniel Dauch, Ralf Steuer, Almut Schulze
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引用次数: 0

摘要

糖酵解通量增加是癌症的标志;然而,越来越多的证据表明,糖酵解产生ATP在癌症中可能是必不可少的,因为代谢可塑性允许癌细胞通过氧化磷酸化增加ATP的产生,从而很容易适应糖酵解的破坏。通过功能基因组筛选,我们发现肝癌细胞对醛缩酶a (ALDOA)耗竭具有独特的敏感性。通过破坏ALDOA的催化活性靶向糖酵解导致小鼠和人肝癌细胞系严重的能量应激和细胞周期阻滞。结合代谢通量分析、代谢组学、稳定同位素示踪和数学模型,我们证明抑制ALDOA会导致糖酵解的不平衡状态,在这种状态下,投资阶段超过了回报阶段。靶向ALDOA有效地将糖酵解从能量产生过程转化为能量消耗过程。此外,我们发现在肝细胞癌动物模型中,ALDOA的消耗延长了生存期并减少了癌细胞的增殖。因此,我们的研究结果表明,通过靶向ALDOA诱导不平衡糖酵解为克服癌细胞固有的代谢可塑性提供了一个独特的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Targeting aldolase A in hepatocellular carcinoma leads to imbalanced glycolysis and energy stress due to uncontrolled FBP accumulation

Targeting aldolase A in hepatocellular carcinoma leads to imbalanced glycolysis and energy stress due to uncontrolled FBP accumulation

Increased glycolytic flux is a hallmark of cancer; however, an increasing body of evidence indicates that glycolytic ATP production may be dispensable in cancer, as metabolic plasticity allows cancer cells to readily adapt to disruption of glycolysis by increasing ATP production via oxidative phosphorylation. Using functional genomic screening, we show here that liver cancer cells show a unique sensitivity toward aldolase A (ALDOA) depletion. Targeting glycolysis by disrupting the catalytic activity of ALDOA led to severe energy stress and cell cycle arrest in murine and human hepatocellular carcinoma cell lines. With a combination of metabolic flux analysis, metabolomics, stable-isotope tracing and mathematical modelling, we demonstrate that inhibiting ALDOA induced a state of imbalanced glycolysis in which the investment phase outpaced the payoff phase. Targeting ALDOA effectively converted glycolysis from an energy producing into an energy-consuming process. Moreover, we found that depletion of ALDOA extended survival and reduced cancer cell proliferation in an animal model of hepatocellular carcinoma. Thus, our findings indicate that induction of imbalanced glycolysis by targeting ALDOA presents a unique opportunity to overcome the inherent metabolic plasticity of cancer cells.

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来源期刊
Nature metabolism
Nature metabolism ENDOCRINOLOGY & METABOLISM-
CiteScore
27.50
自引率
2.40%
发文量
170
期刊介绍: Nature Metabolism is a peer-reviewed scientific journal that covers a broad range of topics in metabolism research. It aims to advance the understanding of metabolic and homeostatic processes at a cellular and physiological level. The journal publishes research from various fields, including fundamental cell biology, basic biomedical and translational research, and integrative physiology. It focuses on how cellular metabolism affects cellular function, the physiology and homeostasis of organs and tissues, and the regulation of organismal energy homeostasis. It also investigates the molecular pathophysiology of metabolic diseases such as diabetes and obesity, as well as their treatment. Nature Metabolism follows the standards of other Nature-branded journals, with a dedicated team of professional editors, rigorous peer-review process, high standards of copy-editing and production, swift publication, and editorial independence. The journal has a high impact factor, has a certain influence in the international area, and is deeply concerned and cited by the majority of scholars.
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