Austin C MacMillan, Bibek Karki, Juechen Yang, Karmela R Gertz, Samantha Zumwalde, Jay G Patel, Maria F Czyzyk-Krzeska, Jarek Meller, John T Cunningham
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摘要

Myc的过度激活协调调节了许多代谢过程,从而推动了淋巴瘤的发生。在这里,我们阐明了在Myc过表达B细胞淋巴瘤中合作控制氧化还原平衡的各种途径、因子和机制之间的时间和功能关系。我们发现,Myc的过表达会迅速刺激氧化磷酸戊糖途径(oxPPP)、核苷酸合成和线粒体呼吸,从而共同将细胞平衡导向更氧化的状态。我们发现,Myc 依赖性磷酸核糖焦磷酸合成酶(PRPS)的过度激活是淋巴瘤细胞氧化还原状态的主要调节因子。从机理上讲,我们发现在Myc驱动的淋巴瘤细胞中,PRPS2同工酶而非PRPS1基因失活会导致NADPH水平升高和还原应激介导的死亡。通过药理学筛选,我们证明了靶向 PRPS1 或 PRPS2 如何分别引起对影响硫代毒素和谷胱甘肽网络的化疗药物的敏感性或耐药性,从而为治疗 Myc 驱动的淋巴瘤提供了治疗蓝图。
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PRPS activity tunes redox homeostasis in Myc-driven lymphoma.

Myc hyperactivation coordinately regulates numerous metabolic processes to drive lymphomagenesis. Here, we elucidate the temporal and functional relationships between the medley of pathways, factors, and mechanisms that cooperate to control redox homeostasis in Myc-overexpressing B cell lymphomas. We find that Myc overexpression rapidly stimulates the oxidative pentose phosphate pathway (oxPPP), nucleotide synthesis, and mitochondrial respiration, which collectively steers cellular equilibrium to a more oxidative state. We identify Myc-dependent hyperactivation of the phosphoribosyl pyrophosphate synthetase (PRPS) enzyme as a primary regulator of redox status in lymphoma cells. Mechanistically, we show that genetic inactivation of the PRPS2 isozyme, but not PRPS1, in MYC-driven lymphoma cells leads to elevated NADPH levels and reductive stress-mediated death. Employing a pharmacological screen, we demonstrate how targeting PRPS1 or PRPS2 elicits opposing sensitivity or resistance, respectively, to chemotherapeutic agents affecting the thioredoxin and glutathione network, thus providing a therapeutic blueprint for treating MYC-driven lymphomas.

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