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PNAS Plus: Rhinovirus induces an anabolic reprogramming in host cell metabolism essential for viral replication

机译:PNAS Plus:鼻病毒诱导宿主细胞代谢中的合成代谢重编程这对于病毒复制至关重要

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摘要

Rhinoviruses (RVs) are responsible for the majority of upper airway infections; despite their high prevalence and the resulting economic burden, effective treatment is lacking. We report here that RV induces metabolic alterations in host cells, which offer an efficient target for antiviral intervention. We show that RV-infected cells rapidly up-regulate glucose uptake in a PI3K-dependent manner. In parallel, infected cells enhance the expression of the PI3K-regulated glucose transporter GLUT1. In-depth metabolomic analysis of RV-infected cells revealed a critical role of glucose mobilization from extracellular and intracellular pools via glycogenolysis for viral replication. Infection resulted in a highly anabolic state, including enhanced nucleotide synthesis and lipogenesis. Consistently, we observed that glucose deprivation from medium and via glycolysis inhibition by 2-deoxyglucose (2-DG) potently impairs viral replication. Metabolomic analysis showed that 2-DG specifically reverts the RV-induced anabolic reprogramming. In addition, treatment with 2-DG inhibited RV infection and inflammation in a murine model. Thus, we demonstrate that the specific metabolic fingerprint of RV infection can be used to identify new targets for therapeutic intervention.
机译:鼻病毒(RVs)是大多数上呼吸道感染的原因。尽管它们的患病率很高,并因此造成经济负担,但仍缺乏有效的治疗方法。我们在这里报告说,RV诱导宿主细胞中的代谢改变,这为抗病毒干预提供了有效的目标。我们显示RV感染细胞以PI3K依赖的方式迅速上调葡萄糖摄取。同时,受感染的细胞增强了PI3K调节的葡萄糖转运蛋白GLUT1的表达。 RV感染细胞的深入代谢组学分析显示,通过糖原分解作用从细胞外和细胞内池中转移出葡萄糖对于病毒复制具有至关重要的作用。感染导致高度合成代谢状态,包括增强的核苷酸合成和脂肪生成。一致地,我们观察到培养基中葡萄糖的剥夺和2-脱氧葡萄糖(2-DG)的糖酵解抑制作用强力削弱了病毒的复制。代谢组学分析表明2-DG特异性地还原了RV诱导的合成代谢重编程。此外,在鼠模型中,用2-DG处理可抑制RV感染和炎症。因此,我们证明RV感染的特定代谢指纹可用于识别治疗干预的新目标。

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